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    <title>Academic</title>
    <link>https://wormcode.github.io/</link>
    <description>Recent content on Academic</description>
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    <item>
      <title>Example Page 1</title>
      <link>https://wormcode.github.io/courses/example/example1/</link>
      <pubDate>Sun, 05 May 2019 00:00:00 +0100</pubDate>
      
      <guid>https://wormcode.github.io/courses/example/example1/</guid>
      <description>

&lt;p&gt;In this tutorial, I&amp;rsquo;ll share my top 10 tips for getting started with Academic:&lt;/p&gt;

&lt;h2 id=&#34;tip-1&#34;&gt;Tip 1&lt;/h2&gt;

&lt;p&gt;Lorem ipsum dolor sit amet, consectetur adipiscing elit. Duis posuere tellus ac convallis placerat. Proin tincidunt magna sed ex sollicitudin condimentum. Sed ac faucibus dolor, scelerisque sollicitudin nisi. Cras purus urna, suscipit quis sapien eu, pulvinar tempor diam. Quisque risus orci, mollis id ante sit amet, gravida egestas nisl. Sed ac tempus magna. Proin in dui enim. Donec condimentum, sem id dapibus fringilla, tellus enim condimentum arcu, nec volutpat est felis vel metus. Vestibulum sit amet erat at nulla eleifend gravida.&lt;/p&gt;

&lt;p&gt;Nullam vel molestie justo. Curabitur vitae efficitur leo. In hac habitasse platea dictumst. Sed pulvinar mauris dui, eget varius purus congue ac. Nulla euismod, lorem vel elementum dapibus, nunc justo porta mi, sed tempus est est vel tellus. Nam et enim eleifend, laoreet sem sit amet, elementum sem. Morbi ut leo congue, maximus velit ut, finibus arcu. In et libero cursus, rutrum risus non, molestie leo. Nullam congue quam et volutpat malesuada. Sed risus tortor, pulvinar et dictum nec, sodales non mi. Phasellus lacinia commodo laoreet. Nam mollis, erat in feugiat consectetur, purus eros egestas tellus, in auctor urna odio at nibh. Mauris imperdiet nisi ac magna convallis, at rhoncus ligula cursus.&lt;/p&gt;

&lt;p&gt;Cras aliquam rhoncus ipsum, in hendrerit nunc mattis vitae. Duis vitae efficitur metus, ac tempus leo. Cras nec fringilla lacus. Quisque sit amet risus at ipsum pharetra commodo. Sed aliquam mauris at consequat eleifend. Praesent porta, augue sed viverra bibendum, neque ante euismod ante, in vehicula justo lorem ac eros. Suspendisse augue libero, venenatis eget tincidunt ut, malesuada at lorem. Donec vitae bibendum arcu. Aenean maximus nulla non pretium iaculis. Quisque imperdiet, nulla in pulvinar aliquet, velit quam ultrices quam, sit amet fringilla leo sem vel nunc. Mauris in lacinia lacus.&lt;/p&gt;

&lt;p&gt;Suspendisse a tincidunt lacus. Curabitur at urna sagittis, dictum ante sit amet, euismod magna. Sed rutrum massa id tortor commodo, vitae elementum turpis tempus. Lorem ipsum dolor sit amet, consectetur adipiscing elit. Aenean purus turpis, venenatis a ullamcorper nec, tincidunt et massa. Integer posuere quam rutrum arcu vehicula imperdiet. Mauris ullamcorper quam vitae purus congue, quis euismod magna eleifend. Vestibulum semper vel augue eget tincidunt. Fusce eget justo sodales, dapibus odio eu, ultrices lorem. Duis condimentum lorem id eros commodo, in facilisis mauris scelerisque. Morbi sed auctor leo. Nullam volutpat a lacus quis pharetra. Nulla congue rutrum magna a ornare.&lt;/p&gt;

&lt;p&gt;Aliquam in turpis accumsan, malesuada nibh ut, hendrerit justo. Cum sociis natoque penatibus et magnis dis parturient montes, nascetur ridiculus mus. Quisque sed erat nec justo posuere suscipit. Donec ut efficitur arcu, in malesuada neque. Nunc dignissim nisl massa, id vulputate nunc pretium nec. Quisque eget urna in risus suscipit ultricies. Pellentesque odio odio, tincidunt in eleifend sed, posuere a diam. Nam gravida nisl convallis semper elementum. Morbi vitae felis faucibus, vulputate orci placerat, aliquet nisi. Aliquam erat volutpat. Maecenas sagittis pulvinar purus, sed porta quam laoreet at.&lt;/p&gt;

&lt;h2 id=&#34;tip-2&#34;&gt;Tip 2&lt;/h2&gt;

&lt;p&gt;Lorem ipsum dolor sit amet, consectetur adipiscing elit. Duis posuere tellus ac convallis placerat. Proin tincidunt magna sed ex sollicitudin condimentum. Sed ac faucibus dolor, scelerisque sollicitudin nisi. Cras purus urna, suscipit quis sapien eu, pulvinar tempor diam. Quisque risus orci, mollis id ante sit amet, gravida egestas nisl. Sed ac tempus magna. Proin in dui enim. Donec condimentum, sem id dapibus fringilla, tellus enim condimentum arcu, nec volutpat est felis vel metus. Vestibulum sit amet erat at nulla eleifend gravida.&lt;/p&gt;

&lt;p&gt;Nullam vel molestie justo. Curabitur vitae efficitur leo. In hac habitasse platea dictumst. Sed pulvinar mauris dui, eget varius purus congue ac. Nulla euismod, lorem vel elementum dapibus, nunc justo porta mi, sed tempus est est vel tellus. Nam et enim eleifend, laoreet sem sit amet, elementum sem. Morbi ut leo congue, maximus velit ut, finibus arcu. In et libero cursus, rutrum risus non, molestie leo. Nullam congue quam et volutpat malesuada. Sed risus tortor, pulvinar et dictum nec, sodales non mi. Phasellus lacinia commodo laoreet. Nam mollis, erat in feugiat consectetur, purus eros egestas tellus, in auctor urna odio at nibh. Mauris imperdiet nisi ac magna convallis, at rhoncus ligula cursus.&lt;/p&gt;

&lt;p&gt;Cras aliquam rhoncus ipsum, in hendrerit nunc mattis vitae. Duis vitae efficitur metus, ac tempus leo. Cras nec fringilla lacus. Quisque sit amet risus at ipsum pharetra commodo. Sed aliquam mauris at consequat eleifend. Praesent porta, augue sed viverra bibendum, neque ante euismod ante, in vehicula justo lorem ac eros. Suspendisse augue libero, venenatis eget tincidunt ut, malesuada at lorem. Donec vitae bibendum arcu. Aenean maximus nulla non pretium iaculis. Quisque imperdiet, nulla in pulvinar aliquet, velit quam ultrices quam, sit amet fringilla leo sem vel nunc. Mauris in lacinia lacus.&lt;/p&gt;

&lt;p&gt;Suspendisse a tincidunt lacus. Curabitur at urna sagittis, dictum ante sit amet, euismod magna. Sed rutrum massa id tortor commodo, vitae elementum turpis tempus. Lorem ipsum dolor sit amet, consectetur adipiscing elit. Aenean purus turpis, venenatis a ullamcorper nec, tincidunt et massa. Integer posuere quam rutrum arcu vehicula imperdiet. Mauris ullamcorper quam vitae purus congue, quis euismod magna eleifend. Vestibulum semper vel augue eget tincidunt. Fusce eget justo sodales, dapibus odio eu, ultrices lorem. Duis condimentum lorem id eros commodo, in facilisis mauris scelerisque. Morbi sed auctor leo. Nullam volutpat a lacus quis pharetra. Nulla congue rutrum magna a ornare.&lt;/p&gt;

&lt;p&gt;Aliquam in turpis accumsan, malesuada nibh ut, hendrerit justo. Cum sociis natoque penatibus et magnis dis parturient montes, nascetur ridiculus mus. Quisque sed erat nec justo posuere suscipit. Donec ut efficitur arcu, in malesuada neque. Nunc dignissim nisl massa, id vulputate nunc pretium nec. Quisque eget urna in risus suscipit ultricies. Pellentesque odio odio, tincidunt in eleifend sed, posuere a diam. Nam gravida nisl convallis semper elementum. Morbi vitae felis faucibus, vulputate orci placerat, aliquet nisi. Aliquam erat volutpat. Maecenas sagittis pulvinar purus, sed porta quam laoreet at.&lt;/p&gt;
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    <item>
      <title>Example Page 2</title>
      <link>https://wormcode.github.io/courses/example/example2/</link>
      <pubDate>Sun, 05 May 2019 00:00:00 +0100</pubDate>
      
      <guid>https://wormcode.github.io/courses/example/example2/</guid>
      <description>

&lt;p&gt;Here are some more tips for getting started with Academic:&lt;/p&gt;

&lt;h2 id=&#34;tip-3&#34;&gt;Tip 3&lt;/h2&gt;

&lt;p&gt;Lorem ipsum dolor sit amet, consectetur adipiscing elit. Duis posuere tellus ac convallis placerat. Proin tincidunt magna sed ex sollicitudin condimentum. Sed ac faucibus dolor, scelerisque sollicitudin nisi. Cras purus urna, suscipit quis sapien eu, pulvinar tempor diam. Quisque risus orci, mollis id ante sit amet, gravida egestas nisl. Sed ac tempus magna. Proin in dui enim. Donec condimentum, sem id dapibus fringilla, tellus enim condimentum arcu, nec volutpat est felis vel metus. Vestibulum sit amet erat at nulla eleifend gravida.&lt;/p&gt;

&lt;p&gt;Nullam vel molestie justo. Curabitur vitae efficitur leo. In hac habitasse platea dictumst. Sed pulvinar mauris dui, eget varius purus congue ac. Nulla euismod, lorem vel elementum dapibus, nunc justo porta mi, sed tempus est est vel tellus. Nam et enim eleifend, laoreet sem sit amet, elementum sem. Morbi ut leo congue, maximus velit ut, finibus arcu. In et libero cursus, rutrum risus non, molestie leo. Nullam congue quam et volutpat malesuada. Sed risus tortor, pulvinar et dictum nec, sodales non mi. Phasellus lacinia commodo laoreet. Nam mollis, erat in feugiat consectetur, purus eros egestas tellus, in auctor urna odio at nibh. Mauris imperdiet nisi ac magna convallis, at rhoncus ligula cursus.&lt;/p&gt;

&lt;p&gt;Cras aliquam rhoncus ipsum, in hendrerit nunc mattis vitae. Duis vitae efficitur metus, ac tempus leo. Cras nec fringilla lacus. Quisque sit amet risus at ipsum pharetra commodo. Sed aliquam mauris at consequat eleifend. Praesent porta, augue sed viverra bibendum, neque ante euismod ante, in vehicula justo lorem ac eros. Suspendisse augue libero, venenatis eget tincidunt ut, malesuada at lorem. Donec vitae bibendum arcu. Aenean maximus nulla non pretium iaculis. Quisque imperdiet, nulla in pulvinar aliquet, velit quam ultrices quam, sit amet fringilla leo sem vel nunc. Mauris in lacinia lacus.&lt;/p&gt;

&lt;p&gt;Suspendisse a tincidunt lacus. Curabitur at urna sagittis, dictum ante sit amet, euismod magna. Sed rutrum massa id tortor commodo, vitae elementum turpis tempus. Lorem ipsum dolor sit amet, consectetur adipiscing elit. Aenean purus turpis, venenatis a ullamcorper nec, tincidunt et massa. Integer posuere quam rutrum arcu vehicula imperdiet. Mauris ullamcorper quam vitae purus congue, quis euismod magna eleifend. Vestibulum semper vel augue eget tincidunt. Fusce eget justo sodales, dapibus odio eu, ultrices lorem. Duis condimentum lorem id eros commodo, in facilisis mauris scelerisque. Morbi sed auctor leo. Nullam volutpat a lacus quis pharetra. Nulla congue rutrum magna a ornare.&lt;/p&gt;

&lt;p&gt;Aliquam in turpis accumsan, malesuada nibh ut, hendrerit justo. Cum sociis natoque penatibus et magnis dis parturient montes, nascetur ridiculus mus. Quisque sed erat nec justo posuere suscipit. Donec ut efficitur arcu, in malesuada neque. Nunc dignissim nisl massa, id vulputate nunc pretium nec. Quisque eget urna in risus suscipit ultricies. Pellentesque odio odio, tincidunt in eleifend sed, posuere a diam. Nam gravida nisl convallis semper elementum. Morbi vitae felis faucibus, vulputate orci placerat, aliquet nisi. Aliquam erat volutpat. Maecenas sagittis pulvinar purus, sed porta quam laoreet at.&lt;/p&gt;

&lt;h2 id=&#34;tip-4&#34;&gt;Tip 4&lt;/h2&gt;

&lt;p&gt;Lorem ipsum dolor sit amet, consectetur adipiscing elit. Duis posuere tellus ac convallis placerat. Proin tincidunt magna sed ex sollicitudin condimentum. Sed ac faucibus dolor, scelerisque sollicitudin nisi. Cras purus urna, suscipit quis sapien eu, pulvinar tempor diam. Quisque risus orci, mollis id ante sit amet, gravida egestas nisl. Sed ac tempus magna. Proin in dui enim. Donec condimentum, sem id dapibus fringilla, tellus enim condimentum arcu, nec volutpat est felis vel metus. Vestibulum sit amet erat at nulla eleifend gravida.&lt;/p&gt;

&lt;p&gt;Nullam vel molestie justo. Curabitur vitae efficitur leo. In hac habitasse platea dictumst. Sed pulvinar mauris dui, eget varius purus congue ac. Nulla euismod, lorem vel elementum dapibus, nunc justo porta mi, sed tempus est est vel tellus. Nam et enim eleifend, laoreet sem sit amet, elementum sem. Morbi ut leo congue, maximus velit ut, finibus arcu. In et libero cursus, rutrum risus non, molestie leo. Nullam congue quam et volutpat malesuada. Sed risus tortor, pulvinar et dictum nec, sodales non mi. Phasellus lacinia commodo laoreet. Nam mollis, erat in feugiat consectetur, purus eros egestas tellus, in auctor urna odio at nibh. Mauris imperdiet nisi ac magna convallis, at rhoncus ligula cursus.&lt;/p&gt;

&lt;p&gt;Cras aliquam rhoncus ipsum, in hendrerit nunc mattis vitae. Duis vitae efficitur metus, ac tempus leo. Cras nec fringilla lacus. Quisque sit amet risus at ipsum pharetra commodo. Sed aliquam mauris at consequat eleifend. Praesent porta, augue sed viverra bibendum, neque ante euismod ante, in vehicula justo lorem ac eros. Suspendisse augue libero, venenatis eget tincidunt ut, malesuada at lorem. Donec vitae bibendum arcu. Aenean maximus nulla non pretium iaculis. Quisque imperdiet, nulla in pulvinar aliquet, velit quam ultrices quam, sit amet fringilla leo sem vel nunc. Mauris in lacinia lacus.&lt;/p&gt;

&lt;p&gt;Suspendisse a tincidunt lacus. Curabitur at urna sagittis, dictum ante sit amet, euismod magna. Sed rutrum massa id tortor commodo, vitae elementum turpis tempus. Lorem ipsum dolor sit amet, consectetur adipiscing elit. Aenean purus turpis, venenatis a ullamcorper nec, tincidunt et massa. Integer posuere quam rutrum arcu vehicula imperdiet. Mauris ullamcorper quam vitae purus congue, quis euismod magna eleifend. Vestibulum semper vel augue eget tincidunt. Fusce eget justo sodales, dapibus odio eu, ultrices lorem. Duis condimentum lorem id eros commodo, in facilisis mauris scelerisque. Morbi sed auctor leo. Nullam volutpat a lacus quis pharetra. Nulla congue rutrum magna a ornare.&lt;/p&gt;

&lt;p&gt;Aliquam in turpis accumsan, malesuada nibh ut, hendrerit justo. Cum sociis natoque penatibus et magnis dis parturient montes, nascetur ridiculus mus. Quisque sed erat nec justo posuere suscipit. Donec ut efficitur arcu, in malesuada neque. Nunc dignissim nisl massa, id vulputate nunc pretium nec. Quisque eget urna in risus suscipit ultricies. Pellentesque odio odio, tincidunt in eleifend sed, posuere a diam. Nam gravida nisl convallis semper elementum. Morbi vitae felis faucibus, vulputate orci placerat, aliquet nisi. Aliquam erat volutpat. Maecenas sagittis pulvinar purus, sed porta quam laoreet at.&lt;/p&gt;
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    <item>
      <title>Example Talk</title>
      <link>https://wormcode.github.io/talk/example/</link>
      <pubDate>Sat, 01 Jun 2030 13:00:00 +0000</pubDate>
      
      <guid>https://wormcode.github.io/talk/example/</guid>
      <description>&lt;div class=&#34;alert alert-note&#34;&gt;
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    Click on the &lt;strong&gt;Slides&lt;/strong&gt; button above to view the built-in slides feature.
  &lt;/div&gt;
&lt;/div&gt;

&lt;p&gt;Slides can be added in a few ways:&lt;/p&gt;

&lt;ul&gt;
&lt;li&gt;&lt;strong&gt;Create&lt;/strong&gt; slides using Academic&amp;rsquo;s &lt;a href=&#34;https://sourcethemes.com/academic/docs/managing-content/#create-slides&#34; target=&#34;_blank&#34;&gt;&lt;em&gt;Slides&lt;/em&gt;&lt;/a&gt; feature and link using &lt;code&gt;slides&lt;/code&gt; parameter in the front matter of the talk file&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;Upload&lt;/strong&gt; an existing slide deck to &lt;code&gt;static/&lt;/code&gt; and link using &lt;code&gt;url_slides&lt;/code&gt; parameter in the front matter of the talk file&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;Embed&lt;/strong&gt; your slides (e.g. Google Slides) or presentation video on this page using &lt;a href=&#34;https://sourcethemes.com/academic/docs/writing-markdown-latex/&#34; target=&#34;_blank&#34;&gt;shortcodes&lt;/a&gt;.&lt;/li&gt;
&lt;/ul&gt;

&lt;p&gt;Further talk details can easily be added to this page using &lt;em&gt;Markdown&lt;/em&gt; and $\rm \LaTeX$ math code.&lt;/p&gt;
</description>
    </item>
    
    <item>
      <title>reinforcement learning</title>
      <link>https://wormcode.github.io/post/reinforcement-learning-an-introduction-translate-copy/</link>
      <pubDate>Sat, 01 Jun 2019 00:00:00 +0000</pubDate>
      
      <guid>https://wormcode.github.io/post/reinforcement-learning-an-introduction-translate-copy/</guid>
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&lt;/head&gt;&lt;/p&gt;

&lt;p&gt;&lt;body lang=ZH-CN link=&#34;#0066CC&#34; vlink=purple style=&#39;tab-interval:21.0pt;
text-justify-trim:punctuation&#39;&gt;&lt;/p&gt;

&lt;div class=WordSection1&gt;

&lt;p class=2f8 style=&#39;mso-pagination:lines-together;page-break-after:avoid;
background:transparent&#39;&gt;&lt;a name=bookmark0&gt;&lt;span lang=EN-US&gt;Reinforcement
Learning An Introduction&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:71.35pt;
margin-left:16.0pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Second edition, in
progress &lt;/span&gt;&lt;span class=2MingLiU3&gt;&lt;span style=&#39;font-size:10.5pt&#39;&gt;\9A\EC\9A\EC\9A\EC\9A\EC&lt;/span&gt;&lt;/span&gt;&lt;span
class=2205pt&gt;&lt;span lang=EN-US style=&#39;font-size:20.5pt&#39;&gt;Draft&lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU3&gt;&lt;span style=&#39;font-size:10.5pt&#39;&gt;\9A\EC\9A\EC\9A\EC\9A\EC&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:200.6pt;
margin-left:16.0pt;line-height:17.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Richard S. Sutton and Andrew G. Barto &lt;/span&gt;&lt;span
class=218pt&gt;&lt;span lang=EN-US style=&#39;font-size:18.0pt&#39;&gt;&amp;copy;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;2014&lt;/span&gt;&lt;span
class=2MingLiU4&gt;&lt;span style=&#39;font-size:9.5pt;mso-ansi-language:ZH-TW&#39;&gt;\A3\AC&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;2015&lt;/span&gt;&lt;span class=2MingLiU4&gt;&lt;span
style=&#39;font-size:9.5pt;mso-ansi-language:ZH-TW&#39;&gt;\A3\AC&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;2016&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;\A3\AC&lt;/span&gt;&lt;span lang=EN-US&gt;2017&lt;/span&gt;&lt;/p&gt;

&lt;p class=3d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.4pt;
margin-left:16.0pt;line-height:10.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;A Bradford Book&lt;/span&gt;&lt;/p&gt;

&lt;p class=3d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;line-height:13.9pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The MIT Press Cambridge,
Massachusetts London, England&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:10.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection2&gt;

&lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In memory of A. Harry Klopf&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection3&gt;

&lt;p class=2f8 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
39.9pt;margin-left:1.0pt;text-align:left;line-height:22.0pt;mso-line-height-rule:
exactly;mso-pagination:lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark1&gt;&lt;span lang=EN-US&gt;Contents&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;tab-stops:right 399.8pt;background:
transparent&#39;&gt;&lt;!--[if supportFields]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-element:
field-begin&#39;&gt;&lt;/span&gt;&lt;span style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;TOC \o
&amp;quot;1-5&amp;quot; \h \z &lt;span style=&#39;mso-element:field-separator&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;span
lang=EN-US&gt;&lt;a href=&#34;#bookmark14&#34; title=&#34;Current Document&#34;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Preface to the
First Edition&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;ix&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;tab-stops:right 399.8pt;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark12&#34; title=&#34;Current Document&#34;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Preface to the
Second Edition&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;xiii&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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margin-left:1.0pt;margin-bottom:.0001pt;tab-stops:right 399.8pt;background:
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style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Summary of
Notation&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;xvii&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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tab-stops:16.85pt 44.4pt right 399.8pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark16&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;The&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Reinforcement
Learning Problem&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;1&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Reinforcement
Learning&lt;span style=&#39;mso-tab-count:2 dotted&#39;&gt;............................................................................... &lt;/span&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Examples&lt;span
style=&#39;mso-tab-count:2 dotted&#39;&gt;..................................................................................................... &lt;/span&gt;4&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Elements
of Reinforcement Learning&lt;span style=&#39;mso-tab-count:2 dotted&#39;&gt;............................................................ &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt&gt;&lt;span style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Limitations
and Scope&lt;span style=&#39;mso-tab-count:2 dotted&#39;&gt;.................................................................................. &lt;/span&gt;7&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;An
Extended Example: Tic-Tac-Toe&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;...................................................... &lt;/span&gt;
10&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Summary&lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................................ &lt;/span&gt;
15&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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style=&#39;color:black&#39;&gt;Early History of Reinforcement Learning&lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................. &lt;/span&gt;
15&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;Tabular Solution Methods&lt;span
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name=bookmark2&gt;&lt;/a&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/p&gt;

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text-underline:none&#39;&gt;&lt;span style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;Multi-armed
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title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;A
k-armed Bandit Problem&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;...................................................................... &lt;/span&gt;28&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Action-value
Methods&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................ &lt;/span&gt;29&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark30&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;The
10-armed Testbed&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.......................................................................... &lt;/span&gt;30&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark31&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Incremental
Implementation &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;33&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark32&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Tracking
a Nonstationary Problem &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;......................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;34&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark33&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Optimistic
Initial Values &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.......................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;36&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark34&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Upper-Confidence-Bound
Action&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;Selection&lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;............................................. &lt;/span&gt;37&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark35&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Gradient
Bandit Algorithms &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;39&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark39&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Associative
Search (Contextual Bandits) &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;42&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark40&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Summary
&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;43&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:0cm;
line-height:16.55pt;mso-line-height-rule:exactly;mso-list:l36 level1 lfo2;
tab-stops:19.1pt center 163.9pt right 401.15pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark3&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;mso-bookmark:bookmark3&#39;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Finite Markov
Decision&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Processes&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;49&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;![if !supportNestedAnchors]&gt;&lt;a
name=bookmark3&gt;&lt;/a&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark43&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;The
Agent-Environment Interface &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.......................................................... &lt;/span&gt;49&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark44&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Goals
and Rewards&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................ &lt;/span&gt;
53&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc3 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark45&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Returns&lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................................... &lt;/span&gt;
54&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc3 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark46&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Unified
Notation for Episodic and Continuing Tasks&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................. &lt;/span&gt;
57&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc3 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark47&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;*The
Markov Property&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................ &lt;/span&gt;
58&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc3 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark48&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Markov
Decision Processes&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................................................. &lt;/span&gt;62&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc3 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark49&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Value
Functions&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;...................................................................................... &lt;/span&gt;65&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark50&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Optimal Value Functions&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;......................................................................... &lt;/span&gt;
70&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc3 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark53&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Optimality
and Approximation&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................................................. &lt;/span&gt;
75&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;a href=&#34;#bookmark54&#34; title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span
style=&#39;color:black&#39;&gt;Summary &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;76&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark4&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;mso-bookmark:bookmark4&#39;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Dynamic
Programming&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;81&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;![if !supportNestedAnchors]&gt;&lt;a
name=bookmark4&gt;&lt;/a&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark57&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Policy
Evaluation &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;82&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark58&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Policy
Improvement &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt&gt;&lt;span
style=&#39;font-size:9.0pt&#39;&gt;86&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc3 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark59&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Policy
Iteration &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;....................................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt&gt;&lt;span
style=&#39;font-size:9.0pt&#39;&gt;88&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc3 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark60&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Value
Iteration &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;........................................................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;91&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc3 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark61&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Asynchronous
Dynamic Programming &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;93&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc3 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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style=&#39;mso-list:Ignore&#39;&gt;4.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark62&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Generalized
Policy Iteration &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;95&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc3 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark63&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Efficiency
of Dynamic Programming&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;........................................................ &lt;/span&gt;96&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc3 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.0pt;
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lang=EN-US&gt;&lt;a href=&#34;#bookmark64&#34; title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span
style=&#39;color:black&#39;&gt;Summary &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;97&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:0cm;
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tab-stops:19.1pt right 401.15pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark5&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;mso-bookmark:bookmark5&#39;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Monte Carlo
Methods&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;101&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;![if !supportNestedAnchors]&gt;&lt;a
name=bookmark5&gt;&lt;/a&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc5 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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style=&#39;mso-list:Ignore&#39;&gt;5.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark67&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Monte
Carlo Prediction &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.......................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;102&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc5 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark68&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Monte
Carlo Estimation of Action Values &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;106&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.55pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;5.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Monte Carlo Control &lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;107&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc5 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark69&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Monte
Carlo Control without Exploring Starts &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.......................................... &lt;/span&gt;110&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc5 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark71&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Off-policy
Prediction via Importance Sampling&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;........................................ &lt;/span&gt;113&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc5 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark74&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Incremental
Implementation &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;119&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark76&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Off-policy
Monte Carlo Control&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................... &lt;/span&gt;120&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;*Discounting-aware
Importance Sampling&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.............................................. &lt;/span&gt;122&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;*Per-reward
Importance Sampling&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.......................................................... &lt;/span&gt;124&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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Returns&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................................................................. &lt;/span&gt;125&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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style=&#39;color:black&#39;&gt;Summary &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;125&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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title=&#34;Current Document&#34;&gt;&lt;span style=&#39;mso-bookmark:bookmark6&#39;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Temporal-Difference
Learning&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;129&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;![if !supportNestedAnchors]&gt;&lt;a
name=bookmark6&gt;&lt;/a&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark85&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;TD
Prediction &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;........................................................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;129&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark86&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Advantages
of TD Prediction Methods &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;133&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc5 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark87&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Optimality
of TD(0)&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................................................................. &lt;/span&gt;136&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark88&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Sarsa:
On-policy TD Control&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................... &lt;/span&gt;139&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.55pt;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Q-learning: Off-policy TD
Control&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;........................................................... &lt;/span&gt;142&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc5 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark90&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Expected
Sarsa&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;...................................................................................... &lt;/span&gt;144&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc5 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark91&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Maximization
Bias and Double Learning&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................... &lt;/span&gt;145&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc5 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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style=&#39;mso-list:Ignore&#39;&gt;6.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark92&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Games,
Afterstates, and Other Special&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;Cases&lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;......................................... &lt;/span&gt;147&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc5 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.2pt;
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lang=EN-US&gt;&lt;a href=&#34;#bookmark93&#34; title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span
style=&#39;color:black&#39;&gt;Summary&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................................. &lt;/span&gt;149&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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tab-stops:19.85pt right 401.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
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title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Multi-step
Bootstrapping&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;153&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc5 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark96&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;n-step
TD Prediction&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.............................................................................. &lt;/span&gt;153&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark98&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;n-step Sarsa&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.......................................................................................... &lt;/span&gt;158&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc5 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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style=&#39;mso-list:Ignore&#39;&gt;7.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark100&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;n-step
Off-policy Learning by Importance Sampling &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................... &lt;/span&gt;160&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark101&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;*Per-reward Off-policy Methods &lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;........................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;162&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Off-policy Learning Without
Importance&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;Sampling:&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:42.0pt;margin-bottom:.0001pt;line-height:16.55pt;mso-line-height-rule:
exactly;tab-stops:dotted 378.4pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;&lt;a
href=&#34;#bookmark103&#34; title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;
text-decoration:none;text-underline:none&#39;&gt;The n-step Tree Backup Algorithm&lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;......................................................... &lt;/span&gt;163&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark114&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;*A Unifying Algorithm: n-step &lt;span class=af0&gt;Q(&lt;/span&gt;&lt;/span&gt;&lt;span
class=af0&gt;&lt;span lang=EN-US&gt;&lt;span lang=EN-US&gt;\A6\D2)&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;&lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;.......................................................... &lt;/span&gt;166&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;a href=&#34;#bookmark118&#34; title=&#34;Current Document&#34;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Summary&lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................................. &lt;/span&gt;170&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark120&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Planning
and Learning with Tabular&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Methods&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;173&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark121&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Models and Planning&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................... &lt;/span&gt;173&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark122&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Dyna: Integrating Planning, Acting,&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;and&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;Learning&lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................... &lt;/span&gt;176&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
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style=&#39;mso-list:Ignore&#39;&gt;8.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark128&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;When the Model Is Wrong &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;....................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;180&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
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style=&#39;mso-list:Ignore&#39;&gt;8.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark129&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Prioritized Sweeping &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.............................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;183&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;8.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark130&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Full vs. Sample Backups &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;........................................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;187&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
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style=&#39;mso-list:Ignore&#39;&gt;8.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark134&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Trajectory Sampling &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;190&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
mso-line-height-rule:exactly;mso-list:l36 level2 lfo2;tab-stops:44.1pt dotted 378.4pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;8.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark135&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Real-time Dynamic Programming &lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;............................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;193&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;8.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark136&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Planning at Decision Time &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;...................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;197&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
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style=&#39;mso-list:Ignore&#39;&gt;8.9&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark137&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Heuristic Search &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;198&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;8.10&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark138&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Rollout Algorithms &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt&gt;&lt;span
style=&#39;font-size:9.0pt&#39;&gt;200&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
mso-line-height-rule:exactly;mso-list:l36 level2 lfo2;tab-stops:44.1pt dotted 378.4pt;
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style=&#39;mso-list:Ignore&#39;&gt;8.11&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark139&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Monte Carlo Tree Search &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;....................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;202&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:25.65pt;
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lang=EN-US&gt;&lt;a href=&#34;#bookmark140&#34; title=&#34;Current Document&#34;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Summary &lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;205&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;II&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark7&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;mso-bookmark:bookmark7&#39;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Approximate
Solution Methods&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;208&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;![if !supportNestedAnchors]&gt;&lt;a
name=bookmark7&gt;&lt;/a&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark8&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;On-policy Prediction with Approximation&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;211&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark144&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Value-function Approximation &lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;................................................................ &lt;/span&gt;&lt;span
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style=&#39;font-size:9.0pt&#39;&gt;211&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark145&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;The Prediction Objective (MSVE) &lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;........................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;212&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark146&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Stochastic-gradient and Semi-gradient&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;Methods &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;214&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark147&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Linear Methods &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;...................................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;218&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc8 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark150&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Feature
Construction for Linear Methods &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;224&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark151&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Polynomials &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;224&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark152&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Fourier Basis &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.............................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;225&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:41.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.55pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;9.5.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Coarse Coding &lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;228&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark153&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Tile Coding &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;231&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;9.5.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark154&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Radial Basis Functions &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;235&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.55pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;9.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Nonlinear Function
Approximation: Artificial Neural Networks . . . . 236&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc8 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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style=&#39;mso-list:Ignore&#39;&gt;9.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark156&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Least-Squares
TD &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................. &lt;/span&gt;241&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc8 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;9.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark157&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Memory-based
Function Approximation &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;243&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc8 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;9.9&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark158&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Kernel-based
Function Approximation &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;245&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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style=&#39;mso-list:Ignore&#39;&gt;9.10&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Looking Deeper at On-policy
Learning: Interest and Emphasis . . . . 246&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc8 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.0pt;
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lang=EN-US&gt;&lt;a href=&#34;#bookmark160&#34; title=&#34;Current Document&#34;&gt;&lt;span
class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Summary &lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;................................................................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;247&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark9&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;mso-bookmark:bookmark8&#39;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;On-policy&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Control&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;with Approximation&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;255&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;![if !supportNestedAnchors]&gt;&lt;a
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&lt;p class=MsoToc8 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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style=&#39;mso-list:Ignore&#39;&gt;10.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark163&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Episodic
Semi-gradient Control &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.............................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;255&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark164&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;n-step
Semi-gradient Sarsa &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................... &lt;/span&gt;259&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Average Reward: A New Problem
Setting for Continuing Tasks . . . . 261&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark166&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Deprecating
the Discounted Setting &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;........................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;264&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark167&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;n-step
Differential Semi-gradient Sarsa&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................... &lt;/span&gt;266&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;10.6&lt;span
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lang=EN-US&gt;&lt;a href=&#34;#bookmark168&#34; title=&#34;Current Document&#34;&gt;&lt;span
class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Summary &lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;................................................................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;267&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark170&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;mso-bookmark:bookmark9&#39;&gt;&lt;span
class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Off-policy&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Methods&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;with&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Approximation&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;269&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;![if !supportNestedAnchors]&gt;&lt;a
name=bookmark9&gt;&lt;/a&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark171&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Semi-gradient
Methods &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.......................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;270&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc8 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark172&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Examples
of Off-policy Divergence &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;........................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;272&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc8 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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style=&#39;mso-list:Ignore&#39;&gt;11.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark173&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;The
Deadly Triad &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;276&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc8 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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style=&#39;mso-list:Ignore&#39;&gt;11.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark174&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Linear
Value-function Geometry &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;278&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.55pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;11.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark176&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Stochastic Gradient Descent in the Bellman Error &lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;282&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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style=&#39;mso-list:Ignore&#39;&gt;11.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark178&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Learnability of the Bellman Error &lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;............................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;287&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.55pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;11.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark180&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Gradient-TD Methods&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................. &lt;/span&gt;291&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark183&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Emphatic-TD Methods &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;........................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;295&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark184&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Reducing Variance &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;296&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.0pt;
margin-left:16.0pt;text-indent:0cm;line-height:16.55pt;mso-line-height-rule:
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lang=EN-US&gt;&lt;a href=&#34;#bookmark185&#34; title=&#34;Current Document&#34;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Summary &lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;298&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:0cm;
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lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;12&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark10&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;mso-bookmark:bookmark10&#39;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Eligibility&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Traces&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;301&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;![if !supportNestedAnchors]&gt;&lt;a
name=bookmark10&gt;&lt;/a&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark188&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;The &lt;/span&gt;&lt;span lang=EN-US style=&#39;color:black;text-decoration:
none;text-underline:none&#39;&gt;&lt;span lang=EN-US&gt;\A6\CB-return&lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;........................................................................................... &lt;/span&gt;302&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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none;text-underline:none&#39;&gt;&lt;span lang=EN-US&gt;\A6\CB)&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;...................................................................................................... &lt;/span&gt;306&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;n-step Truncated&lt;/span&gt;&lt;span style=&#39;font-family:\CB\CE\CC\E5;
mso-ascii-theme-font:minor-fareast;mso-fareast-theme-font:minor-fareast;
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none&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;&lt;span lang=EN-US&gt;\A6\CB-return Methods &lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;...................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;310&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Redoing Updates: The Online&lt;/span&gt;&lt;span style=&#39;font-family:
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none&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;&lt;span lang=EN-US&gt;\A6\CB-return Algorithm&lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;.................................... &lt;/span&gt;311&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark196&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;True Online TD(&lt;/span&gt;&lt;span lang=EN-US style=&#39;color:black;
text-decoration:none;text-underline:none&#39;&gt;&lt;span lang=EN-US&gt;\A6\CB)&lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................... &lt;/span&gt;313&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark199&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Dutch Traces in Monte Carlo Learning &lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;315&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark203&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Sarsa(&lt;/span&gt;&lt;span lang=EN-US style=&#39;color:black;
text-decoration:none;text-underline:none&#39;&gt;&lt;span lang=EN-US&gt;\A6\CB) &lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;317&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark205&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Variable A and &lt;/span&gt;&lt;span class=9pt&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt;font-family:MingLiU&#39;&gt;&lt;span lang=EN-US&gt;\A6\C3&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;&lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;..................................................................................... &lt;/span&gt;322&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark206&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Off-policy Eligibility Traces&lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;..................................................................... &lt;/span&gt;323&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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lang=EN-US&gt;&lt;a href=&#34;#bookmark211&#34; title=&#34;Current Document&#34;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Watkins\A1\AFs Q(&lt;/span&gt;&lt;span
lang=EN-US style=&#39;font-family:MingLiU;color:black;text-decoration:none;
text-underline:none&#39;&gt;&lt;span lang=EN-US&gt;\A6\CB&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;color:black;
text-decoration:none;text-underline:none&#39;&gt;) to Tree-Backup(&lt;/span&gt;&lt;span
lang=EN-US style=&#39;font-family:MingLiU;color:black;text-decoration:none;
text-underline:none&#39;&gt;&lt;span lang=EN-US&gt;\A6\CB&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;color:black;
text-decoration:none;text-underline:none&#39;&gt;)&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;........................................................... &lt;/span&gt;327&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.8pt;
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lang=EN-US&gt;&lt;a href=&#34;#bookmark212&#34; title=&#34;Current Document&#34;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Stable Off-policy
Methods with Traces &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;..................................................... &lt;/span&gt;329&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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lang=EN-US&gt;&lt;a href=&#34;#bookmark213&#34; title=&#34;Current Document&#34;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Implementation
Issues &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;330&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.0pt;
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lang=EN-US&gt;&lt;a href=&#34;#bookmark214&#34; title=&#34;Current Document&#34;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Conclusions &lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;331&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc8 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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style=&#39;mso-list:Ignore&#39;&gt;13&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark216&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Policy
Gradient Methods&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;335&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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style=&#39;mso-list:Ignore&#39;&gt;13.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark217&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Policy Approximation and its Advantages &lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;336&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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style=&#39;mso-list:Ignore&#39;&gt;13.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark218&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;The Policy Gradient Theorem &lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;338&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;13.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark219&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;REINFORCE: Monte Carlo Policy Gradient &lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;340&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark222&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;REINFORCE with Baseline &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;....................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;342&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark223&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Actor-Critic Methods &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;343&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Policy&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Gradient for Continuing Problems &lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;............................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;345&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark226&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Policy&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Parameterization
for Continuous Actions&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;..................................... &lt;/span&gt;348&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Summary &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.................................................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;349&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark11&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;mso-bookmark:bookmark11&#39;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Looking Deeper&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;352&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;![if !supportNestedAnchors]&gt;&lt;a
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark230&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Psychology&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;353&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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style=&#39;mso-list:Ignore&#39;&gt;14.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark231&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Prediction and Control &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;354&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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style=&#39;mso-list:Ignore&#39;&gt;14.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark232&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Classical Conditioning &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;355&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:42.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.8pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;14.2.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark233&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Blocking and Higher-order Conditioning &lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;..................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;357&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:42.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.8pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;14.2.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark234&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;The Rescorla-Wagner Model &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;..................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;359&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:42.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.8pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;14.2.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark235&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;The TD Model &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;361&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:42.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.8pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;14.2.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark236&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;TD Model Simulations &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;363&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.8pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;14.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark238&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Instrumental Conditioning&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;......................................................................... &lt;/span&gt;372&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.8pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;14.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark239&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Delayed Reinforcement&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;........................................................................... &lt;/span&gt;376&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.8pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;14.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark240&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Cognitive Maps&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;....................................................................................... &lt;/span&gt;378&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.8pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;14.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark241&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Habitual and Goal-directed Behavior&lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;....................................................... &lt;/span&gt;379&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:14.85pt;
margin-left:17.0pt;text-indent:0cm;line-height:16.8pt;mso-line-height-rule:
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style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
lang=EN-US&gt;&lt;a href=&#34;#bookmark242&#34; title=&#34;Current Document&#34;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Summary &lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;384&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc8 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark244&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Neuroscience&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;393&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;br
clear=all style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark245&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Neuroscience Basics &lt;/span&gt;&lt;span lang=ZH-TW
style=&#39;color:black;mso-ansi-language:ZH-TW;text-decoration:none;text-underline:
none&#39;&gt;&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.............................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;394&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Reward Signals, Reinforcement
Signals, Values, and Prediction Errors &lt;/span&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;396&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
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style=&#39;mso-list:Ignore&#39;&gt;15.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark247&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;The Reward Prediction Error Hypothesis &lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;color:black;mso-ansi-language:ZH-TW;text-decoration:none;
text-underline:none&#39;&gt;&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;398&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;15.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark248&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Dopamine &lt;/span&gt;&lt;span lang=ZH-TW style=&#39;color:black;
mso-ansi-language:ZH-TW;text-decoration:none;text-underline:none&#39;&gt;&lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;399&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;15.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Experimental Support for the
Reward Prediction Error Hypothesis . . 404&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
mso-line-height-rule:exactly;mso-list:l36 level2 lfo2;tab-stops:42.3pt right dotted 400.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;15.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark250&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;TD Error/Dopamine Correspondence &lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;...................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;406&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
mso-line-height-rule:exactly;mso-list:l36 level2 lfo2;tab-stops:42.3pt right dotted 400.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;15.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark251&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Neural Actor-Critic &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................... &lt;/span&gt;412&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
mso-line-height-rule:exactly;mso-list:l36 level2 lfo2;tab-stops:42.3pt right dotted 400.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;15.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark252&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Actor and Critic Learning Rules &lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;............................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;415&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
mso-line-height-rule:exactly;mso-list:l36 level2 lfo2;tab-stops:42.3pt right dotted 400.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;15.9&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark253&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Hedonistic Neurons &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;420&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
mso-line-height-rule:exactly;mso-list:l36 level2 lfo2;tab-stops:42.3pt right dotted 400.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;15.10&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
lang=EN-US&gt;&lt;a href=&#34;#bookmark254&#34; title=&#34;Current Document&#34;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Collective
Reinforcement Learning &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.......................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;422&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
mso-line-height-rule:exactly;mso-list:l36 level2 lfo2;tab-stops:42.3pt right dotted 400.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;15.11&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
lang=EN-US&gt;&lt;a href=&#34;#bookmark255&#34; title=&#34;Current Document&#34;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Model-based
Methods in the Brain &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;.......................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;425&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.3pt;
mso-line-height-rule:exactly;mso-list:l36 level2 lfo2;tab-stops:42.3pt right dotted 400.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;15.12&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
lang=EN-US&gt;&lt;a href=&#34;#bookmark256&#34; title=&#34;Current Document&#34;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Addiction &lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;427&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.8pt;
margin-left:17.0pt;text-indent:0cm;line-height:16.3pt;mso-line-height-rule:
exactly;mso-list:l36 level2 lfo2;tab-stops:42.3pt right dotted 400.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;15.13&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
lang=EN-US&gt;&lt;a href=&#34;#bookmark257&#34; title=&#34;Current Document&#34;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Summary &lt;span
style=&#39;mso-tab-count:1 dotted&#39;&gt;................................................................................................. &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;428&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc8 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.55pt;
mso-line-height-rule:exactly;mso-list:l36 level1 lfo2;tab-stops:16.85pt right 400.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;16&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark259&#34;
title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Applications
and Case Studies&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;439&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.55pt;
mso-line-height-rule:exactly;mso-list:l36 level2 lfo2;tab-stops:42.3pt right dotted 400.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;16.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark260&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;TD-Gammon &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;........................................................................................... &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;439&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.55pt;
mso-line-height-rule:exactly;mso-list:l36 level2 lfo2;tab-stops:42.3pt right dotted 400.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;16.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark261&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Samuel\A1\AFs Checkers Player&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;......................................................................... &lt;/span&gt;444&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.55pt;
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background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;16.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark262&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;The Acrobot &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;............................................................................................ &lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;447&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.55pt;
mso-line-height-rule:exactly;mso-list:l36 level2 lfo2;tab-stops:42.3pt right dotted 400.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;16.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark263&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Watson\A1\AFs Daily-Double Wagering &lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;.............................................................. &lt;/span&gt;451&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.55pt;
mso-line-height-rule:exactly;mso-list:l36 level2 lfo2;tab-stops:42.3pt right dotted 400.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;16.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark264&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Optimizing Memory Control&lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;........................................................................ &lt;/span&gt;454&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:17.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.55pt;
mso-line-height-rule:exactly;mso-list:l36 level2 lfo2;tab-stops:42.3pt right dotted 400.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;16.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark265&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Human-level Video Game Play&lt;span style=&#39;mso-tab-count:
1 dotted&#39;&gt;................................................................... &lt;/span&gt;458&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/p&gt;

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title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Mastering the Game of Go &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;....................................................................... &lt;/span&gt;&lt;span
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title=&#34;Current Document&#34;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;Personalized Web Services &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;..................................................................... &lt;/span&gt;&lt;span
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text-underline:none&#39;&gt;Thermal Soaring &lt;span style=&#39;mso-tab-count:1 dotted&#39;&gt;...................................................................................... &lt;/span&gt;&lt;span
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title=&#34;Current Document&#34;&gt;&lt;span class=TOC2Char&gt;&lt;span style=&#39;color:black&#39;&gt;Frontiers&lt;span
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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;References&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection4&gt;

&lt;p class=2f8 align=left style=&#39;margin-bottom:37.75pt;text-align:left;
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page-break-after:avoid;background:transparent&#39;&gt;&lt;a name=bookmark12&gt;&lt;span
lang=EN-US&gt;Preface to the First Edition&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;We first came to focus on what is now
known as reinforcement learning in late 1979. We were both at the University of
Massachusetts, working on one of the earliest projects to revive the idea that
networks of neuronlike adaptive elements might prove to be a promising approach
to artificial adaptive intelligence. The project explored the \A1\B0heterostatic
theory of adaptive systems\A1\B1 developed by A. Harry Klopf. Harry\A1\AFs work was a
rich source of ideas, and we were permitted to explore them critically and
compare them with the long history of prior work in adaptive systems. Our task
became one of teasing the ideas apart and understanding their relationships and
relative importance. This continues today, but in 1979 we came to realize that
perhaps the simplest of the ideas, which had long been taken for granted, had
received surprisingly little attention from a computational perspective. This
was simply the idea of a learning system that &lt;span class=af1&gt;wants&lt;/span&gt;
something, that adapts its behavior in order to maximize a special signal from
its environment. This was the idea of a \A1\B0hedonistic\A1\B1 learning system, or, as we
would say now, the idea of reinforcement learning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Like others, we had a sense
that reinforcement learning had been thoroughly ex&amp;shy;plored in the early days of
cybernetics and artificial intelligence. On closer inspection, though, we found
that it had been explored only slightly. While reinforcement learn&amp;shy;ing had
clearly motivated some of the earliest computational studies of learning, most
of these researchers had gone on to other things, such as pattern classifica&amp;shy;tion,
supervised learning, and adaptive control, or they had abandoned the study of
learning altogether. As a result, the special issues involved in learning how
to get something from the environment received relatively little attention. In
retrospect, focusing on this idea was the critical step that set this branch of
research in motion. Little progress could be made in the computational study of
reinforcement learning until it was recognized that such a fundamental idea had
not yet been thoroughly explored.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The field has come a long way
since then, evolving and maturing in several direc&amp;shy;tions. Reinforcement learning
has gradually become one of the most active research areas in machine learning,
artificial intelligence, and neural network research. The field has developed
strong mathematical foundations and impressive applications. The computational
study of reinforcement learning is now a large field, with hun&amp;shy;dreds of active
researchers around the world in diverse disciplines such as psychology, control
theory, artificial intelligence, and neuroscience. Particularly important have
been the contributions establishing and developing the relationships to the
theory of optimal control and dynamic programming. The overall problem of
learning from interaction to achieve goals is still far from being solved, but
our understanding of it has improved significantly. We can now place component
ideas, such as temporal- difference learning, dynamic programming, and function
approximation, within a coherent perspective with respect to the overall
problem.&lt;/span&gt;&lt;span lang=EN-US style=&#39;mso-fareast-font-family:\CB\CE\CC\E5;mso-fareast-theme-font:
minor-fareast&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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\CB\CE\CC\E5&#39;&gt;\CE\CA\CC⻹ԶԶû&lt;/span&gt;\D3н\E2&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\BE\F6&lt;/span&gt;\A3\AC\B5\AB\CE\D2&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\C3Ƕ\D4\CB\FC&lt;/span&gt;\B5\C4\C0\ED\BD\E2\D3\D0\C1\CB\C3\F7&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\CF\D4&lt;/span&gt;\B5\C4\CC\E1\B8ߡ\A3\CE\D2&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\C3\C7\CF\D6&lt;/span&gt;\D4ڿ\C9\D2\D4\D4\DAһ&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\B8\F6\C1\AC\B9\E1&lt;/span&gt;\B5ĽǶ\C8&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\C0\B4&lt;/span&gt;\BF\BC&lt;span style=&#39;font-family:
\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\C2\C7&lt;/span&gt;\D5\FB\CC\E5&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:
\CB\CE\CC\E5&#39;&gt;\CE\CA\CC\E2&lt;/span&gt;\A3\AC\B0\D1&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ʱ\BC\E4&lt;/span&gt;\B2\EE\B7\D6&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ѧϰ&lt;/span&gt;\A3\AC&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\B6\AF̬\B9滮&lt;/span&gt;\BAͺ\AF&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\CA\FD&lt;/span&gt;\B1ƽ\FC\B5\C8&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\D7\E9&lt;/span&gt;\BC\FE˼\CF\EB\B7\C5\D4\DAһ\C6\F0&lt;span lang=EN-US
style=&#39;mso-fareast-font-family:\CB\CE\CC\E5;mso-fareast-theme-font:minor-fareast&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Our goal in writing this book was to provide a
clear and simple account of the key ideas and algorithms of reinforcement
learning. We wanted our treatment to be accessible to readers in all of the
related disciplines, but we could not cover all of these perspectives in
detail. For the most part, our treatment takes the point of view of artificial
intelligence and engineering. Coverage of connections to other fields we leave
to others or to another time. We also chose not to produce a rigorous formal
treatment of reinforcement learning. We did not reach for the highest possible
level of mathematical abstraction and did not rely on a theorem-proof format.
We tried to choose a level of mathematical detail that points the
mathematically inclined in the right directions without distracting from the
simplicity and potential generality of the underlying ideas.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The book is largely self-contained. The only
mathematical background assumed is familiarity with elementary concepts of
probability, such as expectations of random variables. Chapter 9 is
substantially easier to digest if the reader has some knowledge of artificial
neural networks or some other kind of supervised learning method, but it can be
read without prior background. We strongly recommend working the exercises
provided throughout the book. Solution manuals are available to instructors.
This and other related and timely material is available via the Internet.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;At the end of most chapters is a section entitled
\A1\B0Bibliographical and Histori&amp;shy;cal Remarks,\A1\B1 wherein we credit the sources of the
ideas presented in that chapter, provide pointers to further reading and
ongoing research, and describe relevant his&amp;shy;torical background. Despite our
attempts to make these sections authoritative and complete, we have undoubtedly
left out some important prior work. For that we apol&amp;shy;ogize, and welcome
corrections and extensions for incorporation into a subsequent edition.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In some sense we have been working toward this
book for thirty years, and we have lots of people to thank. First, we thank
those who have personally helped us develop the overall view presented in this
book: Harry Klopf, for helping us recognize that reinforcement learning needed
to be revived; Chris Watkins, Dimitri Bertsekas, John Tsitsiklis, and Paul
Werbos, for helping us see the value of the relationships to dynamic
programming; John Moore and Jim Kehoe, for insights and inspirations from
animal learning theory; Oliver Selfridge, for emphasizing the breadth and im&amp;shy;portance
of adaptation; and, more generally, our colleagues and students who have
contributed in countless ways: Ron Williams, Charles Anderson, Satinder Singh,
Sridhar Mahadevan, Steve Bradtke, Bob Crites, Peter Dayan, and Leemon Baird.
Our view of reinforcement learning has been significantly enriched by
discussions with Paul Cohen, Paul Utgoff, Martha Steenstrup, Gerry Tesauro,
Mike Jordan, Leslie Kaelbling, Andrew Moore, Chris Atkeson, Tom Mitchell, Nils
Nilsson, Stuart Russell, Tom Dietterich, Tom Dean, and Bob Narendra. We thank
Michael Littman,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Gerry Tesauro, Bob Crites, Satinder
Singh, and Wei Zhang for providing specifics of Sections 4.7, 15.1, 15.4, 15.5,
and 15.6 respectively. We thank the Air Force Office of Scientific Research,
the National Science Foundation, and GTE Laboratories for their long and
farsighted support.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;We also wish to thank the many
people who have read drafts of this book and provided valuable comments,
including Tom Kalt, John Tsitsiklis, Pawel Cichosz, Olle Gallmo, Chuck
Anderson, Stuart Russell, Ben Van Roy, Paul Steenstrup, Paul Cohen, Sridhar
Mahadevan, Jette Randlov, Brian Sheppard, Thomas O\A1\AFConnell, Richard Coggins,
Cristina Versino, John H. Hiett, Andreas Badelt, Jay Ponte, Joe Beck, Justus
Piater, Martha Steenstrup, Satinder Singh, Tommi Jaakkola, Dimitri Bertsekas,
Torbjorn Ekman, Christina Bjorkman, Jakob Carlstrom, and Olle Palm- gren.
Finally, we thank Gwyn Mitchell for helping in many ways, and Harry Stanton and
Bob Prior for being our champions at MIT Press.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection5&gt;

&lt;p class=4f style=&#39;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
right 301.9pt 315.1pt 334.1pt 360.5pt 399.1pt;background:transparent&#39;&gt;&lt;span
class=41&gt;&lt;span lang=EN-US style=&#39;font-style:normal&#39;&gt;xii&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Preface&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;to&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;the&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;First&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;Edition&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f8 align=left style=&#39;margin-bottom:37.55pt;text-align:left;
line-height:22.0pt;mso-line-height-rule:exactly;mso-pagination:lines-together;
page-break-after:avoid;background:transparent&#39;&gt;&lt;a name=bookmark14&gt;&lt;span
lang=EN-US&gt;Preface to the Second Edition&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The nearly twenty years since the
publication of the first edition of this book have seen tremendous progress in
artificial intelligence, propelled in large part by advances in machine
learning, including advances in reinforcement learning. Although the impressive
computational power that became available is responsible for some of these
advances, new developments in theory and algorithms have been driving forces as
well. In the face of this progress, we decided that a second edition of our
1998 book was long overdue, and we finally began the project in 2013. Our goal
for the second edition was the same as our goal for the first: to provide a
clear and simple account of the key ideas and algorithms of reinforcement
learning that is accessible to readers in all the related disciplines. The
edition remains an introduction, and we retain a focus on core, on-line
learning algorithms. This edition includes some new topics that rose to
importance over the intervening years, and we expanded coverage of topics that
we now understand better. But we made no attempt to provide comprehensive
coverage of the field, which has exploded in many different directions with outstanding
contributions by many active researchers. We apologize for having to leave out
all but a handful of these contributions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;As for the first edition, we
chose not to produce a rigorous formal treatment of reinforcement learning, or
to formulate it in the most general terms. However, since the first edition,
our deeper understanding of some topics required a bit more mathematics to
explain, though we have set off the more mathematical parts in shaded boxes
that the non-mathematically-inclined may choose to skip. We also use a slightly
different notation than we used in the first edition. In teaching, we have
found that the new notation helps to address some common points of confusion.
It emphasizes the difference between random variables, denoted with capital
letters, and their instantiations, denoted in lower case. For example, the
state, action, and reward at time step &lt;span class=af1&gt;t&lt;/span&gt; are denoted &lt;span
class=af1&gt;St, At,&lt;/span&gt; and &lt;span class=af1&gt;Rt,&lt;/span&gt; while their possible
values might be denoted &lt;span class=af1&gt;s, a,&lt;/span&gt; and &lt;span class=af1&gt;r.&lt;/span&gt;
Along with this, it is natural to use lower case for value functions (e.g., &lt;/span&gt;&lt;span
style=&#39;font-size:11.0pt;font-family:MingLiU;mso-bidi-font-family:CMMI10;
color:windowtext&#39;&gt;\A6\D4&lt;/span&gt;&lt;sub&gt;&lt;span style=&#39;font-family:MingLiU&#39;&gt;\A6\D0&lt;/span&gt;&lt;/sub&gt;&lt;span
lang=EN-US&gt;) and restrict capitals to their tabular estimates (e.g., Qt(s, a)).
Approximate value functions are deterministic functions of random parameters
and are thus also in lower case (e.g., V(s,wt) ~ &lt;span class=af1&gt;v&lt;/span&gt;&lt;sub&gt;n&lt;/sub&gt;(s)).
Vectors, such as wt and xt, are bold and written in lowercase even if they are
random variables. Uppercase bold is reserved for matrices. All the changes in
notation are summarized in a table on page xvii.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The contents and scope of the book have been
significantly enlarged compared to the first edition. The most obvious
additions are the chapters on reinforcement learning\A1\AFs relationships to
psychology (Chapter &lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;14)
&lt;/span&gt;&lt;span lang=EN-US&gt;and neuroscience (Chapter &lt;/span&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;15), &lt;/span&gt;&lt;span lang=EN-US&gt;and the much more
extensive treatment of function approximation (Chapters 9-13). The latter
comprise the whole second part of the book, whereas the first part of the book
(Chapters 2-8) is a comprehensive treatment of reinforcement learning while
restricting to the tabular case for which exact solutions can be found. More
subtly, the second edition significantly expands the treatment of off-policy
learning in Chapters 5-7, throughout Chapter &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, and in
Chapter &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; (eligibility traces). Another subtle change is that we separate the
forward-view idea of multi-step bootstrapping (now treated solely and more
fully in Chapter 7) from the backward-view idea of eligibility traces (now
given their own chapter in the function approximation part of the book). Many
additional algorithms are presented in the tabular part of the book (e.g., UCB,
Expected Sarsa, Double learning, n-step methods, tree-backup, &lt;span class=af1&gt;Q(a),&lt;/span&gt;
RLDP, and MCTS) and of course in the function approximation chapters (e.g.,
artificial neural networks, the fourier basis, LSTD, kernel-based methods,
Gradient- TD and Emphatic-TD methods, average-reward methods, true online
TD(A), and policy-gradient methods). The chapter on case studies has been
updated with a selection of recent applications including Atari game playing,
Watson, and AlphaGo. Still, out of necessity we have included only a small
subset of all that is done in the field. Our choices reflect our long-standing
interests in inexpensive model-free methods that should scale well to large
applications. The final chapter now includes a discussion of the future
societal impacts of reinforcement learning. For better or worse, the second
edition is about two-thirds longer than the first.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;This book is designed to be
used as the primary text for a one- or two-semester course on reinforcement
learning. For a one-semester course, the first ten chapters should be covered
in order and form a good core, to which can be added material from the other
chapters, from other books such as Bertsekas and Tsitsiklis (1996) or
Szepesvari (2010), or from the literature, according to taste. Depending of the
student\A1\AFs background, some additional material on online supervised learning
may be helpful. I often cover the ideas of options and option models (Sutton,
Precup and Singh, 1999). A two-semester course can cover all the chapters as
well as supple&amp;shy;mentary material. The book can also be used as part of broader
courses on machine learning, artificial intelligence, or neural networks. In
this case, it may be desirable to cover only a subset of the material. We
recommend covering Chapter 1 for a brief overview, Chapter 2 through Section
2.2, Chapter 3 except Sections 3.4, 3.5 and 3.9, and then selecting sections
from the remaining chapters according to time and inter&amp;shy;ests. Chapter &lt;/span&gt;&lt;span
class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; is the most important for the subject and for the rest of the book.
A course focusing on machine learning or neural networks should cover Chapters
9 and 10, and a course focusing on artificial intelligence or planning should
cover Chapter &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. Throughout the book, sections that are more difficult and not
essential to the rest of the book are marked with a *. These can be omitted on
first reading without creating problems later on. Some exercises are also
marked with a * to indicate that they are more advanced and not essential to
understanding the basic material of the chapter.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
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&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection6&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Most chapters end with a
section entitled \A1\B0Bibliographical and Historical Re&amp;shy;marks,\A1\B1 wherein we credit
the sources of the ideas presented in that chapter, provide pointers to further
reading and ongoing research, and describe relevant historical background.
Despite our attempts to make these sections authoritative and com&amp;shy;plete, we
have undoubtedly left out some important prior work. For that we again apologize,
and we welcome corrections and extensions for incorporation into the elec&amp;shy;tronic
version of the book.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Like the first edition, this
edition of the book is dedicated to the memory of A. Harry Klopf. It was Harry
who introduced us to each other, and it was his ideas about the brain and
artificial intelligence that launched our long excursion into re&amp;shy;inforcement
learning. Trained in neurophysiology and long interested in machine
intelligence, Harry was a senior scientist affiliated with the Avionics Directorate
of the Air Force Office of Scientific Research (AFOSR) at Wright-Patterson Air
Force Base, Ohio. He was dissatisfied with the great importance attributed to
equilibrium- seeking processes, including homeostasis and error-correcting
pattern classification methods, in explaining natural intelligence and in
providing a basis for machine in&amp;shy;telligence. He noted that systems that try to
maximize something (whatever that might be) are qualitatively different form
equilibrium-seeking systems, and he ar&amp;shy;gued that maximizing systems hold the
key to understanding important aspects of natural intelligence and for building
artificial intelligences. Harry was instrumental in obtaining funding from
AFOSR for a project to assess the scientific merit of these and related ideas.
The project was conducted in the late 1970s at the University of Massachusetts
Amherst (UMass Amherst), initially under the direction of Michael Arbib,
William Kilmer, and Nico Spinelli, professors in the Department of Com&amp;shy;puter
and Information Science at UMass Amherst, and founding members of the
Cybernetics Center for Systems Neuroscience at the University, a farsighted
group focusing on the intersection of neuroscience and artificial intelligence.
Barto, a re&amp;shy;cent Ph.D. from the University of Michigan, was hired as post
doctoral researcher on the project. Meanwhile, Sutton, an undergraduate
studying computer science and psychology at Stanford, had been corresponding
with Harry regarding their mutual interest in the role of stimulus timing in
classical conditioning. Harry suggested to the UMass group that Sutton would be
a great addition to the project. Thus, Sut&amp;shy;ton became a UMass graduate student,
whose Ph.D. was directed by Barto, who had become an Associate Professor. The
study of reinforcement learning as presented in this book is rightfully an
outcome of that project instigated by Harry and inspired by his ideas. Further,
Harry was responsible for bringing us, the authors, together in what has been a
long and enjoyable interaction. By dedicating this book to Harry we honor his
essential contributions, not only to the field of reinforcement learning, but
also to our collaboration. We also thank Professors Arbib, Kilmer, and Spinelli
for the opportunity they provided to us to begin exploring these ideas.
Finally, we thank AFOSR for generous support over the early years of our
research, and NSF for its generous support over many of the following years.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.7pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;We have very many people to
thank for their inspiration and help with this sec&amp;shy;ond edition. Everyone we
acknowledged for their inspiration and help with the first edition deserve our
deepest gratitude for this edition as well, which would not ex&amp;shy;ist were it not
for their contributions to edition number one. To that long list we must add
many others who contributed specifically to the second edition. Our stu&amp;shy;dents
over the many years that we have taught from the first edition contributed in
countless ways: exposing errors, offering fixes, and\A1\AAnot the least\A1\AAbeing
confused in places where we could have explained things better. The chapters on
psychology and neuroscience could not have been written without the help of
many experts in those fields. We thank John Moore for his patient tutoring over
many many years on animal learning experiments, theory, and neuroscience, and
for his careful reading of multiple drafts of Chapters 14 and 15. We also thank
Matt Botvinick, Nathaniel Daw, Peter Dayan, and Yael Niv for their penetrating
comments on drafts of these chapter, their essential guidance through the
massive literature, and their intercep&amp;shy;tion of many of our errors in early
drafts. Of course, the remaining errors in these chapters\A1\AAand there must still
be some\A1\AAare totally our own. We owe Phil Thomas thanks for helping us make
these chapters accessible to non-psychologists and non&amp;shy;neuroscientists. We
thank Jim Houk for introducing us to the subject of information processing in
the basal ganglia. Jose Martinez, Terry Sejnowski, David Silver, Gerry Tesauro,
Georgios Theocharous, and Phil Thomas generously helped us understand details
of their reinforcement learning applications for inclusion in the case-studies
chapter and commented on drafts of these sections. Special thanks is owed to
David Silver for helping us better understand Monte Carlo Tree Search. We thank
George Konidaris for his help with the section on the Fourier basis. Emilio
Cartoni, Stefan Dernbach, Clemens Rosenbaum, and Patrick Taylor helped us in a
number important ways for which we are most grateful.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Sutton would also like to thank the members of
the Reinforcement Learning and Artificial Intelligence (RLAI) laboratory at the
University of Alberta for contribu&amp;shy;tions to the second edition. We owe a
particular debt to Rupam Mahmood for essen&amp;shy;tial contributions to the treatment
of off-policy Monte Carlo methods in Chapter 5, to Hamid Maei for helping
develop the perspective on off-policy learning presented in Chapter 11, to Harm
van Seijen for insights that led to the separation of n-step methods from
eligibility traces and, along with Hado van Hasselt, for the ideas involv&amp;shy;ing
exact equivalence of forward and backward views of eligibility traces presented
in Chapter 12. Sutton would also like to gratefully acknowledge the support and
freedom he has granted by the Government of Alberta and the National Science
and Engineering Research Council of Canada throughout the period during which
the second edition was conceived and written. In particular, he would like to
thank Randy Goebel for creating a supportive and far-sighted environment for
research in Alberta.&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;decay-rate parameter for
eligibility traces&lt;/span&gt;&lt;/p&gt;

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text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;t problem:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:228.0pt;margin-bottom:0cm;
margin-left:20.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
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transparent&#39;&gt;&lt;span lang=EN-US&gt;number of actions/arms true value of action a
estimate at time &lt;span class=af1&gt;t&lt;/span&gt; of &lt;span class=af1&gt;q^(a)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:27.0pt;margin-bottom:12.2pt;
margin-left:20.0pt;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:
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class=af1&gt;a&lt;/span&gt; has been selected up through time t learned preference for
selecting action a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:263.0pt;margin-bottom:0cm;
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exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;ov Decision Process: states
action reward&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;![if !RotText]&gt;&lt;img width=29 height=144
src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image001.png&#34;
align=left hspace=7 alt=&#34;Text Box: s+^:Rt T\A1\AF^t^S&#34; v:shapes=&#34;Text_x0020_Box_x0020_874&#34;
class=shape v:dpi=&#34;96&#34;&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;set of all nonterminal states&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:20.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;set of
all states, including the terminal state&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:20.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;set of
all actions possible in state &lt;span class=af1&gt;s&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.0pt;
margin-left:20.0pt;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;set of all possible rewards&lt;/span&gt;&lt;/p&gt;

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mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;discrete
time step&lt;/span&gt;&lt;/p&gt;

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time step of an episode, or of the episode including time t action at time &lt;span
class=af1&gt;t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/div&gt;

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mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
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&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection7&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:10.75pt;text-align:justify;text-justify:
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lang=EN-US&gt;return (cumulative discounted reward) following time &lt;span
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+ 1 to &lt;span class=af1&gt;h&lt;/span&gt; (Section 5.8) A-return, corrected by estimated
state values (Section 12.1)&lt;/span&gt;&lt;/p&gt;

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truncated, corrected A-return, with state values (Section 12.3) truncated,
corrected A-return, with action values (Section 12.3)&lt;/span&gt;&lt;/p&gt;

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      &lt;td width=86 valign=top style=&#39;width:64.3pt;background:white;padding:
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      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=463 valign=top style=&#39;width:347.5pt;background:white;
      padding:0cm .5pt 0cm .5pt;height:13.7pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;ith
      component of learnable weight vector&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:3;height:13.45pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=86 valign=top style=&#39;width:64.3pt;background:white;padding:
      0cm .5pt 0cm .5pt;height:13.45pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
      exactly;background:transparent&#39;&gt;&lt;span class=af3&gt;&lt;span lang=EN-US
      style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;d&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=463 valign=top style=&#39;width:347.5pt;background:white;
      padding:0cm .5pt 0cm .5pt;height:13.45pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;dimensionality\A1\AAthe
      number of components of the main weight vector&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:4;height:13.2pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=86 valign=top style=&#39;width:64.3pt;background:white;padding:
      0cm .5pt 0cm .5pt;height:13.2pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
      exactly;background:transparent&#39;&gt;&lt;span class=af3&gt;&lt;span lang=EN-US
      style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;m&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=463 valign=top style=&#39;width:347.5pt;background:white;
      padding:0cm .5pt 0cm .5pt;height:13.2pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;number
      of &lt;/span&gt;&lt;/span&gt;&lt;span class=0pt&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;
      letter-spacing:0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=af4&gt;&lt;span lang=EN-US
      style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;s in a sparse binary feature
      vector, or&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:5;height:14.15pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=86 valign=top style=&#39;width:64.3pt;background:white;padding:
      0cm .5pt 0cm .5pt;height:14.15pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=463 valign=top style=&#39;width:347.5pt;background:white;
      padding:0cm .5pt 0cm .5pt;height:14.15pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;dimensionality
      of a secondary vector&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:6;height:13.45pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=86 valign=top style=&#39;width:64.3pt;background:white;padding:
      0cm .5pt 0cm .5pt;height:13.45pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
      exactly;background:transparent&#39;&gt;&lt;span class=af4&gt;&lt;span lang=EN-US
      style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;V(s,w)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=463 valign=top style=&#39;width:347.5pt;background:white;
      padding:0cm .5pt 0cm .5pt;height:13.45pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;approximate
      value of state &lt;/span&gt;&lt;/span&gt;&lt;span class=af3&gt;&lt;span lang=EN-US
      style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;
      given weight vector w&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:7;height:13.2pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=86 valign=top style=&#39;width:64.3pt;background:white;padding:
      0cm .5pt 0cm .5pt;height:13.2pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
      exactly;background:transparent&#39;&gt;&lt;span class=af4&gt;&lt;span lang=EN-US
      style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;Vw (s)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=463 valign=top style=&#39;width:347.5pt;background:white;
      padding:0cm .5pt 0cm .5pt;height:13.2pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;alternate
      notation for V(s,w)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:8;height:13.7pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=86 valign=top style=&#39;width:64.3pt;background:white;padding:
      0cm .5pt 0cm .5pt;height:13.7pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
      exactly;background:transparent&#39;&gt;&lt;span class=af4&gt;&lt;span lang=EN-US
      style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;q(s,a, w)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=463 valign=top style=&#39;width:347.5pt;background:white;
      padding:0cm .5pt 0cm .5pt;height:13.7pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;approximate
      value of state-action pair &lt;/span&gt;&lt;/span&gt;&lt;span class=af3&gt;&lt;span
      lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;s, a&lt;/span&gt;&lt;/span&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;
      given weight vector w&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:9;height:12.95pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=86 valign=top style=&#39;width:64.3pt;background:white;padding:
      0cm .5pt 0cm .5pt;height:12.95pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
      exactly;background:transparent&#39;&gt;&lt;span class=af4&gt;&lt;span lang=EN-US
      style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;x(s)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=463 valign=top style=&#39;width:347.5pt;background:white;
      padding:0cm .5pt 0cm .5pt;height:12.95pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;vector
      of features visible when in state &lt;/span&gt;&lt;/span&gt;&lt;span class=af3&gt;&lt;span
      lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:10;height:13.45pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=86 valign=top style=&#39;width:64.3pt;background:white;padding:
      0cm .5pt 0cm .5pt;height:13.45pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
      exactly;background:transparent&#39;&gt;&lt;span class=af4&gt;&lt;span lang=EN-US
      style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;x(s, a)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=463 valign=top style=&#39;width:347.5pt;background:white;
      padding:0cm .5pt 0cm .5pt;height:13.45pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;vector
      of features visible when in state &lt;/span&gt;&lt;/span&gt;&lt;span class=af3&gt;&lt;span
      lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;
      taking action &lt;/span&gt;&lt;/span&gt;&lt;span class=af3&gt;&lt;span lang=EN-US
      style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:11;height:14.15pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=86 valign=top style=&#39;width:64.3pt;background:white;padding:
      0cm .5pt 0cm .5pt;height:14.15pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
      exactly;background:transparent&#39;&gt;&lt;span class=af3&gt;&lt;span lang=EN-US
      style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;xi(s),xi(s,a)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=463 valign=top style=&#39;width:347.5pt;background:white;
      padding:0cm .5pt 0cm .5pt;height:14.15pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;ith
      component of feature vector&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:12;height:13.45pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=86 valign=top style=&#39;width:64.3pt;background:white;padding:
      0cm .5pt 0cm .5pt;height:13.45pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
      exactly;background:transparent&#39;&gt;&lt;span class=af4&gt;&lt;span lang=EN-US
      style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=463 valign=top style=&#39;width:347.5pt;background:white;
      padding:0cm .5pt 0cm .5pt;height:13.45pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;shorthand
      for &lt;/span&gt;&lt;/span&gt;&lt;span class=1pt&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;
      letter-spacing:1.0pt&#39;&gt;x(S) or x(S, A)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:13;height:13.9pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=86 valign=top style=&#39;width:64.3pt;background:white;padding:
      0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
      exactly;background:transparent&#39;&gt;&lt;span class=1pt&gt;&lt;span lang=EN-US
      style=&#39;font-size:9.0pt;letter-spacing:1.0pt&#39;&gt;w&lt;sup&gt;T&lt;/sup&gt;x&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=463 valign=top style=&#39;width:347.5pt;background:white;
      padding:0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;inner
      product of vectors, w&lt;sup&gt;T&lt;/sup&gt;x &lt;/span&gt;&lt;/span&gt;&lt;span class=af3&gt;&lt;span
      lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;J2i &lt;sup&gt;w&lt;/sup&gt;%&lt;sup&gt;x&lt;/sup&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
      class=MingLiU1&gt;&lt;span style=&#39;font-size:8.5pt;letter-spacing:0pt&#39;&gt;\A3\BB&lt;/span&gt;&lt;/span&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;
      e.g., V(s,w) == w&lt;sup&gt;T&lt;/sup&gt;x(s)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:14;height:13.45pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=86 valign=top style=&#39;width:64.3pt;background:white;padding:
      0cm .5pt 0cm .5pt;height:13.45pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
      exactly;background:transparent&#39;&gt;&lt;span class=af4&gt;&lt;span lang=EN-US
      style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span
      class=af3&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt; vt&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=463 valign=top style=&#39;width:347.5pt;background:white;
      padding:0cm .5pt 0cm .5pt;height:13.45pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;secondary
      d-vector of weights, used to learn w&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:15;mso-yfti-lastrow:yes;height:12.0pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;td width=86 valign=top style=&#39;width:64.3pt;background:white;padding:
      0cm .5pt 0cm .5pt;height:12.0pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
      exactly;background:transparent&#39;&gt;&lt;span class=af4&gt;&lt;sup&gt;&lt;span lang=EN-US
      style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;e&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=463 valign=top style=&#39;width:347.5pt;background:white;
      padding:0cm .5pt 0cm .5pt;height:12.0pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;d-vector
      of eligibility traces at time t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
    &lt;/table&gt;
    &lt;/div&gt;
    &lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;array estimates of action-value function &lt;span
class=af1&gt;q&lt;sub&gt;n&lt;/sub&gt;&lt;/span&gt; or &lt;span class=af1&gt;q*&lt;/span&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
66.0pt right 272.65pt 306.0pt;background:transparent&#39;&gt;&lt;span class=af1&gt;&lt;span
lang=EN-US&gt;h(s, a)&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;learned
preference for selecting action &lt;span class=af1&gt;a&lt;/span&gt;&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;in&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;state &lt;span
class=af1&gt;s&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:0cm;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l97 level1 lfo4;
tab-stops:66.0pt right 306.0pt left 6.95pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=af1&gt;&lt;span lang=EN-US&gt;, 6t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;parameter
vector of target policy (Chapter&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;12)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
66.0pt;background:transparent&#39;&gt;&lt;span class=af1&gt;&lt;span lang=EN-US&gt;ne&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;policy
corresponding to parameter 6&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
66.0pt;background:transparent&#39;&gt;&lt;span class=af1&gt;&lt;span lang=EN-US&gt;J&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(n), &lt;span class=af1&gt;J&lt;/span&gt;(&lt;/span&gt;&lt;span class=CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:10.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;performance
measure for policy &lt;span class=af1&gt;n&lt;/span&gt; or ne&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection8&gt;

&lt;p class=4f style=&#39;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
right 318.25pt 336.95pt 400.3pt;background:transparent&#39;&gt;&lt;span class=41&gt;&lt;span
lang=EN-US style=&#39;font-style:normal&#39;&gt;xx&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;SUMMARY&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;OF&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;NOTATION&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;i&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/i&gt;&lt;/p&gt;

&lt;div class=WordSection9&gt;

&lt;p class=8a style=&#39;margin-bottom:23.15pt;line-height:19.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a name=bookmark15&gt;&lt;span lang=EN-US&gt;Chapter 1&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f8 align=left style=&#39;margin-top:0cm;margin-right:50.0pt;margin-bottom:
37.05pt;margin-left:0cm;text-align:left;line-height:29.75pt;mso-line-height-rule:
exactly;mso-pagination:lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark16&gt;&lt;span lang=EN-US&gt;The Reinforcement Learning Problem&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The idea that we learn by interacting
with our environment is probably the first to occur to us when we think about the
nature of learning. When an infant plays, waves its arms, or looks about, it
has no explicit teacher, but it does have a direct sensorimotor connection to
its environment. Exercising this connection produces a wealth of information
about cause and effect, about the consequences of actions, and about what to do
in order to achieve goals. Throughout our lives, such interactions are
undoubtedly a major source of knowledge about our environment and ourselves.
Whether we are learning to drive a car or to hold a conversation, we are
acutely aware of how our environment responds to what we do, and we seek to
influence what happens through our behavior. Learning from interaction is a
foundational idea underlying nearly all theories of learning and intelligence.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In this book we explore a &lt;span class=af1&gt;computational&lt;/span&gt;
approach to learning from interaction. Rather than directly theorizing about
how people or animals learn, we explore ide&amp;shy;alized learning situations and
evaluate the effectiveness of various learning methods. That is, we adopt the
perspective of an artificial intelligence researcher or engineer. We explore
designs for machines that are effective in solving learning problems of
scientific or economic interest, evaluating the designs through mathematical
analysis or computational experiments. The approach we explore, called &lt;span
class=af1&gt;reinforcement learn&amp;shy;ing&lt;/span&gt; ,is much more focused on goal-directed
learning from interaction than are other approaches to machine learning.&lt;/span&gt;&lt;span
lang=EN-US style=&#39;mso-fareast-font-family:\CB\CE\CC\E5;mso-fareast-theme-font:minor-fareast&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;\D4ڱ\BE&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\CA\E9&lt;/span&gt;\D6У\AC\CE\D2&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\C3\C7&lt;/span&gt;̽&lt;span style=&#39;font-family:
\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\CC\D6&lt;/span&gt;\C1\CBһ&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:
\CB\CE\CC\E5&#39;&gt;\D6ִ\D3&lt;/span&gt;\BD\BB\BB\A5\D6\D0&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ѧϰ&lt;/span&gt;\B5\C4&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\BC\C6&lt;/span&gt;\CB㷽\B7\A8\A1\A3 \CE\D2&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\C3\C7&lt;/span&gt;\B2\BB\CA\C7ֱ\BD\D3\C0\ED&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\C2\DB&lt;/span&gt;\C8˻\F2&lt;span
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style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ѧϰ&lt;/span&gt;\C7龳\A3\AC&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\B2\A2\C6\C0&lt;/span&gt;\B9\C0\B8\F7&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\D6\D6ѧϰ&lt;/span&gt;\B7\BD\B7\A8\B5\C4\D3\D0Ч\D0ԡ\A3 Ҳ\BE\CD\CA\C7&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;˵&lt;/span&gt;\A3\AC\CE\D2&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\C3\C7&lt;/span&gt;\B2\C9\D3\C3\C8˹\A4\D6\C7\C4\DC&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\D1\D0&lt;/span&gt;\BE\BF\D5߻򹤳\CC&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ʦ&lt;/span&gt;\B5\C4&lt;span style=&#39;font-family:
\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\B9\DB&lt;/span&gt;\B5㡣 \CE\D2&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:
\CB\CE\CC\E5&#39;&gt;\C3\C7&lt;/span&gt;̽\CB\F7\D3\D0Ч\BD\E2&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\BE\F6&lt;/span&gt;\BF\C6&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ѧ&lt;/span&gt;\BB\F2&lt;span style=&#39;font-family:
\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\BE\AD\BC\C3\D0\CB&lt;/span&gt;Ȥ\B5\C4&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:
\CB\CE\CC\E5&#39;&gt;ѧϰ\CE\CA\CC\E2&lt;/span&gt;\B5Ļ\FA\C6\F7&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\C9\E8\BC\C6&lt;/span&gt;\A3\ACͨ&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\B9\FD\CA\FDѧ&lt;/span&gt;\B7\D6\CE\F6\BB\F2&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\BC\C6&lt;/span&gt;\CB\E3&lt;span style=&#39;font-family:
\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ʵ\D1\E9\C6\C0&lt;/span&gt;\B9\C0&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:
\CB\CE\CC\E5&#39;&gt;\C9\E8\BC\C6&lt;/span&gt;\A1\A3 \CE\D2&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\C3\C7&lt;/span&gt;̽\CB\F7\B5ķ\BD\B7\A8&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\B3\C6Ϊ&lt;/span&gt;ǿ\BB\AF&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ѧϰ&lt;/span&gt;\A3\AC\B1\C8\C6\E4\CB\FB\BB\FA\C6\F7&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ѧϰ&lt;/span&gt;\B7\BD\B7\A8\B8\FCע\D6\D8\D3ڽ\BB\BB\A5\B5\C4Ŀ&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\B1굼&lt;/span&gt;\CF\F2&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ѧϰ&lt;/span&gt;&lt;span lang=EN-US
style=&#39;mso-fareast-font-family:\CB\CE\CC\E5;mso-fareast-theme-font:minor-fareast&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l69 level1 lfo5;
tab-stops:36.0pt;background:transparent&#39;&gt;&lt;a name=bookmark17&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;1.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Reinforcement Learning&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Reinforcement learning, like many
topics whose names end with \A1\B0ing,\A1\B1 such as ma&amp;shy;chine learning and
mountaineering, is simultaneously a problem, a class of solution methods that
work well on the class of problems, and the field that studies these prob&amp;shy;lems
and their solution methods. Reinforcement learning problems involve learning
what to do\A1\AAhow to map situations to actions\A1\AAso as to maximize a numerical re&amp;shy;ward
signal. In an essential way these are &lt;span class=af1&gt;closed-loop&lt;/span&gt;
problems because the learning system\A1\AFs actions influence its later inputs.
Moreover, the learner is not told which actions to take, as in many forms of
machine learning, but instead must discover which actions yield the most reward
by trying them out. In the most interesting and challenging cases, actions may
affect not only the immediate reward but also the next situation and, through
that, all subsequent rewards. These three characteristics\A1\AA being closed-loop in
an essential way, not having direct instructions as to what actions to take,
and where the consequences of actions, including reward signals, play out over
extended time periods\A1\AAare the three most important distinguishing features of
the reinforcement learning problem.&lt;/span&gt;&lt;span lang=EN-US style=&#39;mso-fareast-font-family:
\CB\CE\CC\E5;mso-fareast-theme-font:minor-fareast&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;ǿ\BB\AF&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:
\CB\CE\CC\E5&#39;&gt;ѧϰ&lt;/span&gt;\BE\CD\CF\F1&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\D0\ED&lt;/span&gt;\B6\E0\C3\FB\D7\D6\D2ԡ\B0&lt;span
lang=EN-US&gt;ing&lt;/span&gt;\A1\B1&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\BD\E1&lt;/span&gt;β\B5\C4&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\BB\B0\CC\E2&lt;/span&gt;\A3\AC\A1\B0\C8\E7\BB\FA\C6\F7\A1\B1&lt;span lang=EN-US&gt;&lt;br&gt;
&lt;/span&gt;&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ѧϰ&lt;/span&gt;\BA͵\C7ɽ\A3\ACͬ&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ʱ&lt;/span&gt;Ҳ\CA\C7һ&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\B8\F6\CE\CA\CC\E2&lt;/span&gt;\A3\ACһ&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\C0\E0&lt;/span&gt;\BD\E2&lt;span style=&#39;font-family:
\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\BE\F6&lt;/span&gt;\B7\BD\B0\B8&lt;span lang=EN-US&gt;&lt;br&gt;
&lt;/span&gt;&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\B6\D4\D5\E2\C0\E0\CE\CA\CC\E2&lt;/span&gt;\D3\D0Ч\B5ķ\BD\B7\A8\A3\AC\D2Լ\B0&lt;span
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lang=EN-US&gt;&lt;br&gt;
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ǿ\BB\AF&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ѧϰ\CE\CA\CC\E2&lt;/span&gt;\A1\A3&lt;span
lang=EN-US style=&#39;mso-fareast-font-family:\CB\CE\CC\E5;mso-fareast-theme-font:minor-fareast&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;A full specification of the
reinforcement learning problem in terms of the optimal control of Markov
decision processes (MDPs) must wait until Chapter 3, but the basic idea is
simply to capture the most important aspects of the real problem facing a
learning agent interacting with its environment to achieve a goal. Clearly,
such an agent must be able to sense the state of the environment to some extent
and must be able to take actions that affect the state. The agent also must
have a goal or goals relating to the state of the environment. The MDP
formulation is intended to include just these three aspects\A1\AAsensation, action,
and goal\A1\AAin their simplest possible forms without trivializing any of them. Any
method that is well suited to solving such problems we consider to be a
reinforcement learning method.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Reinforcement learning is
different from &lt;span class=af1&gt;supervised learning,&lt;/span&gt; the kind of learning
studied in most current research in the field of machine learning. Supervised
learn&amp;shy;ing is learning from a training set of labeled examples provided by a
knowledgable external supervisor. Each example is a description of a situation
together with a specification\A1\AAthe label\A1\AAof the correct action the system should
take to that situa&amp;shy;tion, which is often to identify a category to which the
situation belongs. The object of this kind of learning is for the system to
extrapolate, or generalize, its responses so that it acts correctly in situations
not present in the training set. This is an important kind of learning, but
alone it is not adequate for learning from interac&amp;shy;tion. In interactive
problems it is often impractical to obtain examples of desired behavior that
are both correct and representative of all the situations in which the agent
has to act. In uncharted territory\A1\AAwhere one would expect learning to be most
beneficial\A1\AAan agent must be able to learn from its own experience.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Reinforcement learning is also
different from what machine learning researchers call &lt;span class=af1&gt;unsupervised
learning&lt;/span&gt;, which is typically about finding structure hidden in
collections of unlabeled data. The terms supervised learning and unsupervised
learning appear to exhaustively classify machine learning paradigms, but they
do not. Although one might be tempted to think of reinforcement learning as a
kind of unsupervised learn&amp;shy;ing because it does not rely on examples of correct
behavior, reinforcement learning is trying to maximize a reward signal instead
of trying to find hidden structure. Un&amp;shy;covering structure in an agent\A1\AFs
experience can certainly be useful in reinforcement learning, but by itself
does not address the reinforcement learning agent\A1\AFs problem of maximizing a
reward signal. We therefore consider reinforcement learning to be a third
machine learning paradigm, alongside supervised learning and unsupervised&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:1.05pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;learning,
and perhaps other paradigms as well.&lt;/span&gt;&lt;span lang=EN-US style=&#39;mso-fareast-font-family:
\CB\CE\CC\E5;mso-fareast-theme-font:minor-fareast&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\BA\C5&lt;/span&gt;\B5\C4&lt;span style=&#39;font-family:
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mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\C3\C7\C8\CFΪ&lt;/span&gt;ǿ\BB\AF&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:
\CB\CE\CC\E5&#39;&gt;ѧϰ&lt;/span&gt;\CA\C7&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\BC\E0&lt;/span&gt;\B6\BD&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ѧϰ&lt;/span&gt;\BA\CD\CE\DE&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\BC\E0&lt;/span&gt;\B6\BD&lt;span style=&#39;font-family:
\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ѧϰ&lt;/span&gt;\B5ĵ\DA\C8\FD&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:
\CB\CE\CC\E5&#39;&gt;\D6\D6&lt;/span&gt;\BB\FA\C6\F7&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ѧϰ&lt;/span&gt;\B7\B6ʽ&lt;span
lang=EN-US&gt;&lt;br&gt;
&lt;/span&gt;&lt;span style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;ѧϰ&lt;/span&gt;\A3\ACҲ&lt;span
style=&#39;font-family:\CB\CE\CC\E5;mso-bidi-font-family:\CB\CE\CC\E5&#39;&gt;\D0\ED\BB\B9&lt;/span&gt;\D3\D0\C6\E4\CB\FB\B7\B6\C0\FD\A1\A3&lt;span lang=EN-US
style=&#39;mso-fareast-font-family:\CB\CE\CC\E5;mso-fareast-theme-font:minor-fareast&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;One of the challenges that
arise in reinforcement learning, and not in other kinds of learning, is the
trade-off between exploration and exploitation. To obtain a lot of reward, a
reinforcement learning agent must prefer actions that it has tried in the past
and found to be effective in producing reward. But to discover such actions, it
has to try actions that it has not selected before. The agent has to &lt;span
class=af1&gt;exploit&lt;/span&gt; what it already knows in order to obtain reward, but
it also has to &lt;span class=af1&gt;explore&lt;/span&gt; in order to make better action
selections in the future. The dilemma is that neither exploration nor
exploitation can be pursued exclusively without failing at the task. The agent
must try a variety of actions &lt;span class=af1&gt;and&lt;/span&gt; progressively favor
those that appear to be best. On a stochastic task, each action must be tried
many times to gain a reliable estimate of its expected reward. The exploration-exploitation
dilemma has been intensively studied by mathematicians for many decades (see
Chapter 2). For now, we simply note that the entire issue of balancing
exploration and exploitation does not even arise in supervised and unsupervised
learning, at least in their purest forms.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Another key feature of
reinforcement learning is that it explicitly considers the &lt;span class=af1&gt;whole&lt;/span&gt;
problem of a goal-directed agent interacting with an uncertain environment.
This is in contrast with many approaches that consider subproblems without
address&amp;shy;ing how they might fit into a larger picture. For example, we have
mentioned that much of machine learning research is concerned with supervised
learning without ex&amp;shy;plicitly specifying how such an ability would finally be
useful. Other researchers have developed theories of planning with general
goals, but without considering planning\A1\AFs role in real-time decision-making, or
the question of where the predictive models nec&amp;shy;essary for planning would come
from. Although these approaches have yielded many useful results, their focus
on isolated subproblems is a significant limitation.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Reinforcement learning takes
the opposite tack, starting with a complete, interac&amp;shy;tive, goal-seeking agent.
All reinforcement learning agents have explicit goals, can sense aspects of
their environments, and can choose actions to influence their envi&amp;shy;ronments.
Moreover, it is usually assumed from the beginning that the agent has to
operate despite significant uncertainty about the environment it faces. When reinforcement
learning involves planning, it has to address the interplay between planning
and real-time action selection, as well as the question of how environment
models are acquired and improved. When reinforcement learning involves
supervised learning, it does so for specific reasons that determine which
capabilities are critical and which are not. For learning research to make
progress, important subproblems have to be isolated and studied, but they
should be subproblems that play clear roles in complete, interactive,
goal-seeking agents, even if all the details of the complete agent cannot yet
be filled in.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Now by a complete,
interactive, goal-seeking agent we do not always mean some&amp;shy;thing like a
complete organism or robot. These are clearly examples, but a complete,
interactive, goal-seeking agent can also be a component of a larger behaving
system. In this case, the agent directly interacts with the rest of the larger
system and indi&amp;shy;rectly interacts with the larger system\A1\AFs environment. A simple
example is an agent that monitors the charge level of robot\A1\AFs battery and sends
commands to the robot\A1\AFs control architecture. This agent\A1\AFs environment is the
rest of the robot together with the robot\A1\AFs environment. One must look beyond
the most obvious examples of agents and their environments to appreciate the
generality of the reinforcement learning framework.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:13.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;One of the most exciting
aspects of modern reinforcement learning is its sub&amp;shy;stantive and fruitful
interactions with other engineering and scientific disciplines. Reinforcement
learning is part of a decades-long trend within artificial intelligence and
machine learning toward greater integration with statistics, optimization, and
other mathematical subjects. For example, the ability of some reinforcement
learning methods to learn with parameterized approximators addresses the
classical \A1\B0curse of dimensionality\A1\B1 in operations research and control theory.
More distinctively, rein&amp;shy;forcement learning has also interacted strongly with
psychology and neuroscience, with substantial benefits going both ways. Of all
the forms of machine learning, reinforcement learning is the closest to the
kind of learning that humans and other animals do, and many of the core
algorithms of reinforcement learning were originally inspired by biological
learning systems. And reinforcement learning has also given back, both through
a psychological model of animal learning that better matches some of the
empirical data, and through an influential model of parts of the brain\A1\AFs reward
system. The body of this book develops the ideas of reinforcement learning that
pertain to engineering and artificial intelligence, with connections to
psychology and neuroscience summarized in Chapters 14 and 15.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
13.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Finally, reinforcement learning is also part of a larger trend in
artificial intelligence back toward simple general principles. Since the late
1960\A1\AFs, many artificial intel&amp;shy;ligence researchers presumed that there are no
general principles to be discovered, that intelligence is instead due to the possession
of vast numbers of special purpose tricks, procedures, and heuristics. It was
sometimes said that if we could just get enough relevant facts into a machine,
say one million, or one billion, then it would become intelligent. Methods
based on general principles, such as search or learning, were characterized as
\A1\B0weak methods,\A1\B1 whereas those based on specific knowledge were called \A1\B0strong
methods.\A1\B1 This view is still common today, but much less dom&amp;shy;inant. From our
point of view, it was simply premature: too little effort had been put into the
search for general principles to conclude that there were none. Modern AI now
includes much research looking for general principles of learning, search, and
decision-making, as well as trying to incorporate vast amounts of domain
knowledge. It is not clear how far back the pendulum will swing, but
reinforcement learning re&amp;shy;search is certainly part of the swing back toward
simpler and fewer general principles of artificial intelligence.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l69 level1 lfo5;
tab-stops:36.25pt;background:transparent&#39;&gt;&lt;a name=bookmark18&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;1.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Examples&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;A good way to understand reinforcement learning is to consider some
of the examples and possible applications that have guided its development.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:0cm;text-align:justify;text-justify:inter-ideograph;
text-indent:13.0pt;line-height:9.5pt;mso-line-height-rule:exactly;mso-list:
l68 level1 lfo6;tab-stops:24.05pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;&amp;#8226;&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;A master chess player makes a
move. The choice is informed both by planning\A1\AA&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection10&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.2pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;anticipating possible replies and counterreplies\A1\AAand by immediate,
intuitive judgments of the desirability of particular positions and moves.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.2pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-13.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l68 level1 lfo6;
tab-stops:26.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;&amp;#8226;&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;An adaptive controller adjusts
parameters of a petroleum refinery\A1\AFs operation in real time. The controller
optimizes the yield/cost/quality trade-off on the basis of specified marginal
costs without sticking strictly to the set points originally suggested by
engineers.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:5.8pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-13.0pt;line-height:13.2pt;mso-line-height-rule:exactly;mso-list:l68 level1 lfo6;
tab-stops:26.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;&amp;#8226;&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;A gazelle calf struggles to its
feet minutes after being born. Half an hour later it is running at &lt;/span&gt;&lt;span
class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;20&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; miles per hour.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-13.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l68 level1 lfo6;
tab-stops:26.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;&amp;#8226;&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;A mobile robot decides whether
it should enter a new room in search of more trash to collect or start trying
to find its way back to its battery recharging station. It makes its decision
based on the current charge level of its battery and how quickly and easily it
has been able to find the recharger in the past.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-13.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l68 level1 lfo6;
tab-stops:26.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;&amp;#8226;&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Phil prepares his breakfast. Closely
examined, even this apparently mundane activity reveals a complex web of
conditional behavior and interlocking goal- subgoal relationships: walking to
the cupboard, opening it, selecting a cereal box, then reaching for, grasping,
and retrieving the box. Other complex, tuned, interactive sequences of behavior
are required to obtain a bowl, spoon, and milk jug. Each step involves a series
of eye movements to obtain information and to guide reaching and locomotion.
Rapid judgments are continually made about how to carry the objects or whether
it is better to ferry some of them to the dining table before obtaining others.
Each step is guided by goals, such as grasping a spoon or getting to the
refrigerator, and is in service of other goals, such as having the spoon to eat
with once the cereal is prepared and ultimately obtaining nourishment. Whether
he is aware of it or not, Phil is accessing information about the state of his
body that determines his nutritional needs, level of hunger, and food preferences.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:15.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;These examples share features
that are so basic that they are easy to overlook. All involve &lt;span class=af1&gt;interaction&lt;/span&gt;
between an active decision-making agent and its environment, within which the
agent seeks to achieve a &lt;span class=af1&gt;goal&lt;/span&gt; despite &lt;span class=af1&gt;uncertainty&lt;/span&gt;
about its environ&amp;shy;ment. The agent\A1\AFs actions are permitted to affect the future
state of the environment (e.g., the next chess position, the level of
reservoirs of the refinery, the robot\A1\AFs next location and the future charge
level of its battery), thereby affecting the options and opportunities
available to the agent at later times. Correct choice requires taking into
account indirect, delayed consequences of actions, and thus may require
foresight or planning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:15.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;At the same time, in all these
examples the effects of actions cannot be fully predicted; thus the agent must
monitor its environment frequently and react appro&amp;shy;priately. For example, Phil
must watch the milk he pours into his cereal bowl to keep it from overflowing.
All these examples involve goals that are explicit in the sense that the agent
can judge progress toward its goal based on what it can sense directly. The
chess player knows whether or not he wins, the refinery controller knows how
much petroleum is being produced, the mobile robot knows when its batteries run
down, and Phil knows whether or not he is enjoying his breakfast.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:30.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In all of these examples the agent can use its experience to improve
its performance over time. The chess player refines the intuition he uses to
evaluate positions, thereby improving his play; the gazelle calf improves the
efficiency with which it can run; Phil learns to streamline making his
breakfast. The knowledge the agent brings to the task at the start\A1\AAeither from
previous experience with related tasks or built into it by design or evolution\A1\AAinfluences
what is useful or easy to learn, but interaction with the environment is
essential for adjusting behavior to exploit specific features of the task.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l69 level1 lfo5;
tab-stops:36.25pt;background:transparent&#39;&gt;&lt;a name=bookmark19&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;1.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Elements of Reinforcement
Learning&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Beyond the agent and the environment,
one can identify four main subelements of a reinforcement learning system: a &lt;span
class=af1&gt;policy&lt;/span&gt;, a &lt;span class=af1&gt;reward signal&lt;/span&gt;, a &lt;span
class=af1&gt;value function&lt;/span&gt;, and, optionally, a &lt;span class=af1&gt;model&lt;/span&gt;
of the environment.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;A &lt;span class=af1&gt;policy&lt;/span&gt;
defines the learning agent\A1\AFs way of behaving at a given time. Roughly speaking,
a policy is a mapping from perceived states of the environment to actions to be
taken when in those states. It corresponds to what in psychology would be
called a set of stimulus-response rules or associations (provided that stimuli
include those that can come from within the animal). In some cases the policy
may be a simple function or lookup table, whereas in others it may involve
extensive computation such as a search process. The policy is the core of a
reinforcement learning agent in the sense that it alone is sufficient to
determine behavior. In general, policies may be stochastic.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;A &lt;span class=af1&gt;reward
signal&lt;/span&gt; defines the goal in a reinforcement learning problem. On each
time step, the environment sends to the reinforcement learning agent a single
number, a &lt;span class=af1&gt;reward.&lt;/span&gt; The agent\A1\AFs sole objective is to
maximize the total reward it receives over the long run. The reward signal thus
defines what are the good and bad events for the agent. In a biological system,
we might think of rewards as analogous to the experiences of pleasure or pain.
They are the immediate and defining features of the problem faced by the agent.
As such, the process that generates the reward signal must be unalterable by
the agent. The agent can alter the signal that the process produces directly by
its actions and indirectly by changing its environment\A1\AFs state\A1\AA since the
reward signal depends on these\A1\AAbut it cannot change the function that generates
the signal. In other words, the agent cannot simply change the problem it is
facing into another one. The reward signal is the primary basis for altering
the policy. If an action selected by the policy is followed by low reward, then
the policy may be changed to select some other action in that situation in the
future. In general, reward signals may be stochastic functions of the state of
the environment and the actions taken. In Chapter 3 we explain how the idea of
a reward function being unalterable by the agent is consistent with what we see
in biology where reward signals are generated within an animal\A1\AFs brain.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Whereas the reward signal indicates what is good
in an immediate sense, a &lt;span class=af1&gt;value function&lt;/span&gt; specifies what
is good in the long run. Roughly speaking, the &lt;span class=af1&gt;value&lt;/span&gt; of
a state is the total amount of reward an agent can expect to accumulate over
the future, starting from that state. Whereas rewards determine the immediate,
intrin&amp;shy;sic desirability of environmental states, values indicate the &lt;span
class=af1&gt;long-term&lt;/span&gt; desirability of states after taking into account the
states that are likely to follow, and the rewards available in those states.
For example, a state might always yield a low immediate reward but still have a
high value because it is regularly followed by other states that yield high
rewards. Or the reverse could be true. To make a human analogy, rewards are
somewhat like pleasure (if high) and pain (if low), whereas values correspond
to a more refined and farsighted judgment of how pleased or displeased we are
that our environment is in a particular state. Expressed this way, we hope it
is clear that value functions formalize a basic and familiar idea.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Rewards are in a sense primary, whereas values,
as predictions of rewards, are secondary. Without rewards there could be no
values, and the only purpose of es&amp;shy;timating values is to achieve more reward.
Nevertheless, it is values with which we are most concerned when making and
evaluating decisions. Action choices are made based on value judgments. We seek
actions that bring about states of highest value, not highest reward, because
these actions obtain the greatest amount of reward for us over the long run.
Unfortunately, it is much harder to determine values than it is to determine
rewards. Rewards are basically given directly by the environment, but values
must be estimated and re-estimated from the sequences of observations an agent
makes over its entire lifetime. In fact, the most important component of almost
all reinforcement learning algorithms we consider is a method for efficiently
estimat&amp;shy;ing values. The central role of value estimation is arguably the most
important thing we have learned about reinforcement learning over the last few
decades.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The fourth and final element of some reinforcement learning systems
is a &lt;span class=af1&gt;model&lt;/span&gt; of the environment. This is something that
mimics the behavior of the environment, or more generally, that allows
inferences to be made about how the environment will behave. For example, given
a state and action, the model might predict the resultant next state and next
reward. Models are used for &lt;span class=af1&gt;planning,&lt;/span&gt; by which we mean
any way of deciding on a course of action by considering possible future
situations before they are actually experienced. Methods for solving
reinforcement learning problems that use models and planning are called &lt;span
class=af1&gt;model-based&lt;/span&gt; methods, as opposed to simpler &lt;span class=af1&gt;model-free&lt;/span&gt;
methods that are explicitly trial-and-error learners\A1\AAviewed as almost the &lt;span
class=af1&gt;opposite&lt;/span&gt; of planning. In Chapter &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; we explore
reinforcement learning systems that simultaneously learn by trial and error,
learn a model of the environment, and use the model for planning. Modern
reinforcement learning spans the spectrum from low-level, trial-and-error
learning to high-level, deliberative planning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l69 level1 lfo5;
tab-stops:37.25pt;background:transparent&#39;&gt;&lt;a name=bookmark20&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;1.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Limitations and Scope&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Most of the reinforcement learning methods we
consider in this book are struc&amp;shy;tured around estimating value functions, but it
is not strictly necessary to do this to solve reinforcement learning problems.
For example, methods such as genetic algo&amp;shy;rithms, genetic programming,
simulated annealing, and other optimization methods have been used to approach
reinforcement learning problems without ever appealing to value functions.
These methods evaluate the \A1\B0lifetime\A1\B1 behavior of many non&amp;shy;learning agents,
each using a different policy for interacting with its environment, and select
those that are able to obtain the most reward. We call these &lt;span class=af1&gt;evolution&amp;shy;ary&lt;/span&gt;
methods because their operation is analogous to the way biological evolution
produces organisms with skilled behavior even when they do not learn during
their individual lifetimes. If the space of policies is sufficiently small, or
can be structured so that good policies are common or easy to find\A1\AAor if a lot
of time is available for the search\A1\AAthen evolutionary methods can be effective.
In addition, evolutionary methods have advantages on problems in which the
learning agent cannot accurately sense the state of its environment.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Our focus is on reinforcement
learning methods that involve learning while inter&amp;shy;acting with the environment,
which evolutionary methods do not do (unless they evolve learning algorithms,
as in some of the approaches that have been studied). It is our belief that
methods able to take advantage of the details of individual be&amp;shy;havioral
interactions can be much more efficient than evolutionary methods in many
cases. Evolutionary methods ignore much of the useful structure of the
reinforce&amp;shy;ment learning problem: they do not use the fact that the policy they
are searching for is a function from states to actions; they do not notice
which states an individual passes through during its lifetime, or which actions
it selects. In some cases this information can be misleading (e.g., when states
are misperceived), but more often it should enable more efficient search.
Although evolution and learning share many features and naturally work
together, we do not consider evolutionary methods by themselves to be
especially well suited to reinforcement learning problems. For sim&amp;shy;plicity, in
this book when we use the term \A1\B0reinforcement learning method\A1\B1 we do not
include evolutionary methods.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;However, we do include some
methods that, like evolutionary methods, do not appeal to value functions.
These methods search in spaces of policies defined by a collection of numerical
parameters. They estimate the directions the parameters should be adjusted in
order to most rapidly improve a policy\A1\AFs performance. Un&amp;shy;like evolutionary
methods, however, they produce these estimates while the agent is interacting
with its environment and so can take advantage of the details of individ&amp;shy;ual
behavioral interactions. Methods like this, called &lt;span class=af1&gt;policy
gradient methods,&lt;/span&gt; have proven useful in many problems, and some of the
simplest reinforcement learning methods fall into this category. In fact, some
of these methods take advantage of value function estimates to improve their
gradient estimates. Overall, the distinc&amp;shy;tion between policy gradient methods
and other methods we include as reinforcement learning methods is not sharply
defined.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Reinforcement learning\A1\AFs
connection to optimization methods deserves some ad&amp;shy;ditional comment because it
is a source of a common misunderstanding. When we say that a reinforcement
learning agent\A1\AFs goal is to maximize a numerical reward signal, we of course
are not insisting that the agent has to actually achieve the goal of maximum
reward. &lt;span class=af1&gt;Trying&lt;/span&gt; to maximize a quantity does not mean that
that quan&amp;shy;tity is ever maximized. The point is that a reinforcement learning
agent is always trying to increase the amount of reward it receives. Many
factors can prevent it from achieving the maximum, even if one exists. In other
words, optimization is not the same as optimality.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Whether or not an optimization method ever
achieves optimality, designing arti&amp;shy;ficial intelligence systems based on
optimization requires care because the behavior of these systems is not always
predictable. Reinforcement learning agents sometimes discover unexpected ways
of making their environments deliver reward. From one perspective, this is a
desirable property of intelligence: it is a kind of creativity. A process based
on variation and selection\A1\AAthe essence of both evolution and reinforce&amp;shy;ment
learning\A1\AAcan discover new paths to success for whatever challenges an animal
population or an artificial intelligence faces. But it raises the important
issue of how to make sure these unexpected \A1\B0solutions\A1\B1 do not have unintended
and undesirable consequences.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;This concern is hardly new with reinforcement
learning; it is a primal theme in lit&amp;shy;erature (for example, Goethe\A1\AFs 1797
poem\A1\B0The Sorcerer\A1\AFs Apprentice\A1\B1&lt;/span&gt;\A3\AC&lt;span lang=EN-US&gt;among many others) and
is summed up by the trope \A1\B0Be careful what you wish for because you just might
get it!\A1\B1 Approaches to reducing the severity of this problem, such as en&amp;shy;forcing
constraints during optimization or by adjusting objective functions to make
optimization sensitive to risk, are only partial solutions. Standard
engineering prac&amp;shy;tice has long required careful examination of any result of an
optimization process before using that result in constructing a product, a
structure, or any real-world system whose safe performance people will rely
upon. This is also essential prac&amp;shy;tice for engineering uses of reinforcement
learning, and special care is needed if a reinforcement learning system is
deployed on-line in a domain in which unforeseen consequences can be
unacceptable\A1\AAnot just for the reinforcement learning agent, but also for the
agent\A1\AFs environment and the people in it. The fast pace of artifi&amp;shy;cial
intelligence, especially as machine learning systems are enabling super-human
performance in certain domains, is bringing this concern to the fore.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The unpredictability of optimization is just one
aspect of the wider subject of how reinforcement learning systems can be
deployed responsibly in the real world. This, again, is not significantly
different from the same concern about other engineering technologies, and many
approaches to mitigating the risk of unwanted consequences have been developed.
Particularly relevant are approaches to mitigating risk in ap&amp;shy;plications of
optimal control methods, some of which have been adapted to reinforce&amp;shy;ment
learning. This is a large and complicated subject, with many dimensions, that
goes beyond what we are attempting to cover in this introductory text. However,
we cannot emphasize too strongly that when treated as an engineering
methodology\A1\AA and not just as a theory about learning and
intelligence\A1\AAreinforcement learning is subject to all the cautions that guide
the application of any engineering methodology.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection11&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:18.15pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l69 level1 lfo5;
tab-stops:36.0pt;background:transparent&#39;&gt;&lt;a name=bookmark21&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;1.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;An Extended Example:
Tic-Tac-Toe&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;To illustrate the general idea of
reinforcement learning and contrast it with other approaches, we next consider
a single example in more detail.&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Consider the familiar child\A1\AFs game of tic-tac-toe.
Two play&amp;shy;ers take turns playing on a three-by-three board. One player plays Xs
and the other Os until one player wins by placing three marks in a row,
horizontally, vertically, or diagonally, as the X player has in the game shown
to the right. If the board fills up with neither player getting three in a row,
the game is a draw. Because a skilled player can play so as never to lose, let
us assume that we are playing against an imperfect&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;player, one whose play is sometimes
incorrect and allows us to win. For the moment, in fact, let us consider draws
and losses to be equally bad for us. How might we construct a player that will
find the imperfections in its opponent\A1\AFs play and learn to maximize its chances
of winning?&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Although this is a simple
problem, it cannot readily be solved in a satisfactory way through classical
techniques. For example, the classical \A1\B0minimax\A1\B1 solution from game theory is
not correct here because it assumes a particular way of playing by the
opponent. For example, a minimax player would never reach a game state from
which it could lose, even if in fact it always won from that state because of
incorrect play by the opponent. Classical optimization methods for sequential
decision problems, such as dynamic programming, can &lt;span class=af1&gt;compute&lt;/span&gt;
an optimal solution for any opponent, but require as input a complete
specification of that opponent, including the probabilities with which the
opponent makes each move in each board state. Let us assume that this
information is not available a priori for this problem, as it is not for the
vast majority of problems of practical interest. On the other hand, such
information can be estimated from experience, in this case by playing many
games against the opponent. About the best one can do on this problem is first
to learn a model of the opponent\A1\AFs behavior, up to some level of confidence,
and then apply dynamic programming to compute an optimal solution given the
approximate opponent model. In the end, this is not that different from some of
the reinforcement learning methods we examine later in this book.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;An evolutionary method applied
to this problem would directly search the space of possible policies for one
with a high probability of winning against the opponent. Here, a policy is a
rule that tells the player what move to make for every state of the game\A1\AAevery
possible configuration of Xs and Os on the three-by-three board. For each
policy considered, an estimate of its winning probability would be obtained by
playing some number of games against the opponent. This evaluation would then
direct which policy or policies were considered next. A typical evolutionary
method would hill-climb in policy space, successively generating and evaluating
policies in an attempt to obtain incremental improvements. Or, perhaps, a
genetic-style algorithm could be used that would maintain and evaluate a
population of policies. Literally hundreds of different optimization methods
could be applied.&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Here is how the tic-tac-toe problem would be
approached with a method making use of a value function. First we set up a
table of numbers, one for each possible state of the game. Each number will be
the latest estimate of the probability of our winning from that state. We treat
this estimate as the state\A1\AFs &lt;span class=af1&gt;value&lt;/span&gt;, and the whole table
is the learned value function. State A has higher value than state B, or is
considered \A1\B0better\A1\B1 than state B, if the current estimate of the probability of
our winning from A is higher than it is from B. Assuming we always play Xs,
then for all states with three Xs in a row the probability of winning is 1,
because we have already won. Similarly, for all states with three Os in a row,
or that are \A1\B0filled up,\A1\B1 the correct probability is 0, as we cannot win from
them. We set the initial values of all the other states to 0.5, representing a
guess that we have a 50% chance of winning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;We play many games against the opponent. To
select our moves we examine the states that would result from each of our
possible moves (one for each blank space on the board) and look up their
current values in the table. Most of the time we move &lt;span class=af1&gt;greedily&lt;/span&gt;,
selecting the move that leads to the state with greatest value, that is, with
the highest estimated probability of winning. Occasionally, however, we select
randomly from among the other moves instead. These are called &lt;span class=af1&gt;exploratory&lt;/span&gt;
moves because they cause us to experience states that we might otherwise never
see. A sequence of moves made and considered during a game can be diagrammed as
in Figure 1.1.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;While we are playing, we change the values of the states in which we
find ourselves during the game. We attempt to make them more accurate estimates
of the proba&amp;shy;bilities of winning. To do this, we \A1\B0back up\A1\B1 the value of the
state after each greedy move to the state before the move, as suggested by the
arrows in Figure 1.1. More precisely, the current value of the earlier state is
adjusted to be closer to the value of the later state. This can be done by
moving the earlier state\A1\AFs value a fraction of the way toward the value of the
later state. If we let s denote the state before the greedy move, and &lt;span
class=af1&gt;s&lt;sup&gt;f&lt;/sup&gt;&lt;/span&gt; the state after the move, then the update to the
estimated value of &lt;span class=af1&gt;s,&lt;/span&gt; denoted &lt;span class=af1&gt;V&lt;/span&gt;(s),
can be written as&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.25pt;
margin-left:28.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=af1&gt;&lt;span lang=EN-US&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(s) ^ V(s) + a[v(s&#39;) - V(s^ ,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;where &lt;span class=af1&gt;a&lt;/span&gt; is a small
positive fraction called the &lt;span class=af1&gt;step-size parameter,&lt;/span&gt; which
influences the rate of learning. This update rule is an example of a &lt;span
class=af1&gt;temporal-difference&lt;/span&gt; learning method, so called because its
changes are based on a difference, V(s&#39;) \A1\AA V(s), between estimates at two
different times.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The method described above performs quite well on
this task. For example, if the step-size parameter is reduced properly over
time (see page 35), this method converges, for any fixed opponent, to the true
probabilities of winning from each state given optimal play by our player.
Furthermore, the moves then taken (except on exploratory moves) are in fact the
optimal moves against this (imperfect) opponent. In other words, the method
converges to an optimal policy for playing the game against this opponent. If
the step-size parameter is not reduced all the way to zero over time, then this
player also plays well against opponents that slowly change their&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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&lt;div class=WordSection14&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:1.25pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;way of
playing.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;This example illustrates the
differences between evolutionary methods and the methods that learn value
functions. To evaluate a policy an evolutionary method holds the policy fixed
and plays many games against the opponent, or simulates many games using a model
of the opponent. The frequency of wins gives an unbiased estimate of the
probability of winning with that policy, and can be used to direct the next
policy selection. But each policy change is made only after many games, and
only the final outcome of each game is used: what happens &lt;span class=af1&gt;during&lt;/span&gt;
the games is ignored. For example, if the player wins, then &lt;span class=af1&gt;all&lt;/span&gt;
of its behavior in the game is given credit, independently of how specific
moves might have been critical to the win. Credit is even given to moves that
never occurred! Value function methods, in contrast, allow individual states to
be evaluated. In the end, evolutionary and value function methods both search
the space of policies, but learning a value function takes advantage of
information available during the course of play.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;This simple example
illustrates some of the key features of reinforcement learning methods. First,
there is the emphasis on learning while interacting with an envi&amp;shy;ronment, in
this case with an opponent player. Second, there is a clear goal, and correct
behavior requires planning or foresight that takes into account delayed effects
of one\A1\AFs choices. For example, the simple reinforcement learning player would
learn to set up multi-move traps for a shortsighted opponent. It is a striking
feature of&lt;br clear=all style=&#39;page-break-before:always&#39;&gt;
the reinforcement learning solution that it can achieve the effects of planning
and lookahead without using a model of the opponent and without conducting an
explicit search over possible sequences of future states and actions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;While this example illustrates
some of the key features of reinforcement learning, it is so simple that it
might give the impression that reinforcement learning is more limited than it
really is. Although tic-tac-toe is a two-person game, reinforcement learning
also applies in the case in which there is no external adversary, that is, in
the case of a \A1\B0game against nature.\A1\B1 Reinforcement learning also is not
restricted to problems in which behavior breaks down into separate episodes,
like the separate games of tic-tac-toe, with reward only at the end of each
episode. It is just as applica&amp;shy;ble when behavior continues indefinitely and
when rewards of various magnitudes can be received at any time. Reinforcement
learning is also applicable to problems that do not even break down into
discrete time steps, like the plays of tic-tac-toe. The general principles
apply to continuous-time problems as well, although the theory gets more
complicated and we omit it from this introductory treatment.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Tic-tac-toe has a relatively
small, finite state set, whereas reinforcement learning can be used when the
state set is very large, or even infinite. For example, Gerry Tesauro (1992,
1995) combined the algorithm described above with an artificial neu&amp;shy;ral network
to learn to play backgammon, which has approximately &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;10&lt;sup&gt;20&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; states. With this many states it is impossible ever to experience
more than a small fraction of them. Tesauro\A1\AFs program learned to play far
better than any previous program, and now plays at the level of the world\A1\AFs
best human players (see Chapter 16). The neural network provides the program
with the ability to generalize from its experi&amp;shy;ence, so that in new states it
selects moves based on information saved from similar states faced in the past,
as determined by its network. How well a reinforcement learning system can work
in problems with such large state sets is intimately tied to how appropriately
it can generalize from past experience. It is in this role that we have the
greatest need for supervised learning methods with reinforcement learning.
Neural networks and deep learning (Section 9.6) are not the only, or
necessarily the best, way to do this.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In this tic-tac-toe example,
learning started with no prior knowledge beyond the rules of the game, but
reinforcement learning by no means entails a tabula rasa view of learning and
intelligence. On the contrary, prior information can be incorporated into
reinforcement learning in a variety of ways that can be critical for efficient
learning. We also had access to the true state in the tic-tac-toe example,
whereas reinforcement learning can also be applied when part of the state is
hidden, or when different states appear to the learner to be the same. That
case, however, is substantially more difficult, and we do not cover it significantly
in this book.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Finally, the tic-tac-toe player was able to look ahead and know the
states that would result from each of its possible moves. To do this, it had to
have a model of the game that allowed it to \A1\B0think about\A1\B1 how its environment
would change in response to moves that it might never make. Many problems are
like this, but in others even a short-term model of the effects of actions is
lacking. Reinforcement learning can be applied in either case. No model is
required, but models can easily be used if they are available or can be
learned.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;On the other hand, there are reinforcement
learning methods that do not need any kind of environment model at all.
Model-free systems cannot even think about how their environments will change
in response to a single action. The tic-tac-toe player is model-free in this
sense with respect to its opponent: it has no model of its opponent of any
kind. Because models have to be reasonably accurate to be useful, model-free
methods can have advantages over more complex methods when the real bottleneck
in solving a problem is the difficulty of constructing a sufficiently accurate
environment model. Model-free methods are also important building blocks for
model-based methods. In this book we devote several chapters to model-free
methods before we discuss how they can be used as components of more complex
model-based methods.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Reinforcement learning can be used at both high and low levels in a
system. Al&amp;shy;though the tic-tac-toe player learned only about the basic moves of
the game, nothing prevents reinforcement learning from working at higher levels
where each of the \A1\B0ac&amp;shy;tions\A1\B1 may itself be the application of a possibly
elaborate problem-solving method. In hierarchical learning systems,
reinforcement learning can work simultaneously on several levels.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 399.95pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 1.1: &lt;span class=af1&gt;Self-Play&lt;/span&gt;
Suppose, instead of playing against a random opponent, the reinforcement
learning algorithm described above played against itself, with both sides
learning. What do you think would happen in this case? Would it learn a
different policy for selecting moves?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 399.95pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 1.2: &lt;span class=af1&gt;Symmetries&lt;/span&gt;
Many tic-tac-toe positions appear different but are really the same because of
symmetries. How might we amend the learning process described above to take
advantage of this? In what ways would this change improve the learning process?
Now think again. Suppose the opponent did not take advantage of symmetries. In
that case, should we? Is it true, then, that symmetrically equivalent positions
should necessarily have the same value?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 399.95pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 1.3: &lt;span class=af1&gt;Greedy
Play&lt;/span&gt; Suppose the reinforcement learning player was &lt;span class=af1&gt;greedy,
&lt;/span&gt;that is, it always played the move that brought it to the position that
it rated the best. Might it learn to play better, or worse, than a nongreedy
player? What problems might occur?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 399.95pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 1.4: &lt;span class=af1&gt;Learning
from Exploration&lt;/span&gt; Suppose learning updates occurred after &lt;span
class=af1&gt;all&lt;/span&gt; moves, including exploratory moves. If the step-size
parameter is appropriately reduced over time (but not the tendency to explore),
then the state values would converge to a set of probabilities. What are the
two sets of probabilities computed when we do, and when we do not, learn from
exploratory moves? Assuming that we do continue to make exploratory moves,
which set of probabilities might be better to learn? Which would result in more
wins?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 399.95pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 1.5: &lt;span
class=af1&gt;Other Improvements&lt;/span&gt; Can you think of other ways to improve the
reinforcement learning player? Can you think of any better way to solve the
tic-tac- toe problem as posed?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection15&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l69 level1 lfo5;
tab-stops:36.35pt;background:transparent&#39;&gt;&lt;a name=bookmark22&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;1.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Summary&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Reinforcement learning is a computational
approach to understanding and automat&amp;shy;ing goal-directed learning and
decision-making. It is distinguished from other com&amp;shy;putational approaches by
its emphasis on learning by an agent from direct interaction with its
environment, without relying on exemplary supervision or complete models of the
environment. In our opinion, reinforcement learning is the first field to se&amp;shy;riously
address the computational issues that arise when learning from interaction with
an environment in order to achieve long-term goals.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Reinforcement learning uses a
formal framework defining the interaction between a learning agent and its
environment in terms of states, actions, and rewards. This framework is
intended to be a simple way of representing essential features of the
artificial intelligence problem. These features include a sense of cause and
effect, a sense of uncertainty and nondeterminism, and the existence of
explicit goals.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The concepts of value and value functions are the key features of
most of the reinforcement learning methods that we consider in this book. We
take the position that value functions are important for efficient search in
the space of policies. The use of value functions distinguishes reinforcement
learning methods from evolutionary methods that search directly in policy space
guided by scalar evaluations of entire policies.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l69 level1 lfo5;
tab-stops:36.35pt;background:transparent&#39;&gt;&lt;a name=bookmark23&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;1.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Early History of Reinforcement
Learning&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The history of reinforcement learning
has two main threads, both long and rich, that were pursued independently
before intertwining in modern reinforcement learning. One thread concerns
learning by trial and error that started in the psychology of animal learning.
This thread runs through some of the earliest work in artificial intelligence
and led to the revival of reinforcement learning in the early 1980s. The other
thread concerns the problem of optimal control and its solution using value
functions and dynamic programming. For the most part, this thread did not
involve learning. Although the two threads have been largely independent, the
exceptions revolve around a third, less distinct thread concerning
temporal-difference methods such as the one used in the tic-tac-toe example in
this chapter. All three threads came together in the late 1980s to produce the
modern field of reinforcement learning as we present it in this book.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The thread focusing on
trial-and-error learning is the one with which we are most familiar and about
which we have the most to say in this brief history. Before doing that,
however, we briefly discuss the optimal control thread.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The term \A1\B0optimal control\A1\B1
came into use in the late 1950s to describe the problem of designing a
controller to minimize a measure of a dynamical system\A1\AFs behavior over time.
One of the approaches to this problem was developed in the mid-1950s by Richard
Bellman and others through extending a nineteenth century theory of Hamilton
and Jacobi. This approach uses the concepts of a dynamical system\A1\AFs state and
of a value function, or \A1\B0optimal return function,\A1\B1 to define a functional
equation, now often called the Bellman equation. The class of methods for
solving optimal control problems by solving this equation came to be known as
dynamic programming (Bellman, 1957a). Bellman (1957b) also introduced the
discrete stochastic version of the optimal control problem known as Markovian
decision processes (MDPs), and Ronald Howard (1960) devised the policy
iteration method for MDPs. All of these are essential elements underlying the
theory and algorithms of modern reinforcement learning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Dynamic programming is widely
considered the only feasible way of solving general stochastic optimal control
problems. It suffers from what Bellman called \A1\B0the curse of dimensionality,\A1\B1
meaning that its computational requirements grow exponentially with the number
of state variables, but it is still far more efficient and more widely
applicable than any other general method. Dynamic programming has been exten&amp;shy;sively
developed since the late 1950s, including extensions to partially observable
MDPs (surveyed by Lovejoy, 1991), many applications (surveyed by White, 1985,
1988, 1993), approximation methods (surveyed by Rust, 1996), and asynchronous
methods (Bertsekas, 1982, 1983). Many excellent modern treatments of dynamic
programming are available (e.g., Bertsekas, 2005, 2012; Puterman, 1994; Ross,
1983; and Whittle, 1982, 1983). Bryson (1996) provides an authoritative history
of optimal control.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In this book, we consider all
of the work in optimal control also to be, in a sense, work in reinforcement
learning. We define a reinforcement learning method as any ef&amp;shy;fective way of
solving reinforcement learning problems, and it is now clear that these
problems are closely related to optimal control problems, particularly
stochastic op&amp;shy;timal control problems such as those formulated as MDPs.
Accordingly, we must consider the solution methods of optimal control, such as
dynamic programming, also to be reinforcement learning methods. Because almost
all of the conventional methods require complete knowledge of the system to be
controlled, it feels a little unnatural to say that they are part of
reinforcement &lt;span class=af1&gt;learning.&lt;/span&gt; On the other hand, many dynamic
programming algorithms are incremental and iterative. Like learning methods,
they gradually reach the correct answer through successive approximations. As
we show in the rest of this book, these similarities are far more than
superficial. The theories and solution methods for the cases of complete and
incomplete knowl&amp;shy;edge are so closely related that we feel they must be considered
together as part of the same subject matter.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Let us return now to the other
major thread leading to the modern field of rein&amp;shy;forcement learning, that
centered on the idea of trial-and-error learning. We only touch on the major
points of contact here, taking up this topic in more detail in Chapter 14.
According to American psychologist R. S. Woodworth the idea of trial- and-error
learning goes as far back as the 1850s to Alexander Bain\A1\AFs discussion of
learning by \A1\B0groping and experiment\A1\B1 and more explicitly to the British
ethologist and psychologist Conway Lloyd Morgan\A1\AFs 1894 use of the term to
describe his ob&amp;shy;servations of animal behavior (Woodworth, 1938). Perhaps the
first to succinctly express the essence of trial-and-error learning as a
principle of learning was Edward&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:7.25pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Thorndike:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:28.0pt;margin-bottom:6.0pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Of several responses made to the same situation, those which are
accom&amp;shy;panied or closely followed by satisfaction to the animal will, other
things being equal, be more firmly connected with the situation, so that, when
it recurs, they will be more likely to recur; those which are accompanied or
closely followed by discomfort to the animal will, other things being equal,
have their connections with that situation weakened, so that, when it recurs,
they will be less likely to occur. The greater the satisfaction or discomfort,
the greater the strengthening or weakening of the bond. (Thorndike, 1911, p.
244)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Thorndike called this the \A1\B0Law of Effect\A1\B1 because
it describes the effect of reinforcing events on the tendency to select actions.
Thorndike later modified the law to better account for accumulating data on
animal learning (such as differences between the effects of reward and
punishment), and the law in its various forms has generated con&amp;shy;siderable
controversy among learning theorists (e.g., see Gallistel, 2005; Herrnstein,
1970; Kimble, 1961, 1967; Mazur, 1994). Despite this, the Law of Effect\A1\AAin one
form or another\A1\AAis widely regarded as a basic principle underlying much
behavior (e.g., Hilgard and Bower, 1975; Dennett, 1978; Campbell, 1960; Cziko,
1995). It is the basis of the influential learning theories of Clark Hull and
experimental methods of B. F. Skinner (e.g., Hull, 1943; Skinner, 1938).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The term \A1\B0reinforcement\A1\B1 in the context of animal
learning came into use well after Thorndike\A1\AFs expression of the Law of Effect,
to the best of our knowledge first appearing in this context in the 1927
English translation of Pavlov\A1\AFs monograph on conditioned reflexes.
Reinforcement is the strengthening of a pattern of behavior as a result of an
animal receiving a stimulus\A1\AAa reinforcer\A1\AAin an appropriate temporal
relationship with another stimulus or with a response. Some psychologists
extended its meaning to include the process of weakening in addition to
strengthening, as well applying when the omission or termination of an event
changes behavior. Reinforce&amp;shy;ment produces changes in behavior that persist
after the reinforcer is withdrawn, so that a stimulus that attracts an animal\A1\AFs
attention or that energizes its behavior without producing lasting changes is
not considered to be a reinforcer.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:6.2pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.7pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The idea of implementing
trial-and-error learning in a computer appeared among the earliest thoughts
about the possibility of artificial intelligence. In a 1948 report, Alan Turing
described a design for a \A1\B0pleasure-pain system\A1\B1 that worked along the lines of
the Law of Effect:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:28.0pt;margin-bottom:6.0pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;When a configuration is reached for which the action is
undetermined, a random choice for the missing data is made and the appropriate
entry is made in the description, tentatively, and is applied. When a pain
stimulus occurs all tentative entries are cancelled, and when a pleasure
stimulus occurs they are all made permanent. (Turing, 1948)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Many ingenious electro-mechanical machines were
constructed that demonstrated trial-and-error learning. The earliest may have
been a machine built by Thomas&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Ross &lt;/span&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;(1933) &lt;/span&gt;&lt;span lang=EN-US&gt;that was able to
find its way through a simple maze and remember the path through the settings
of switches. In &lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;1951 &lt;/span&gt;&lt;span
lang=EN-US&gt;W. Grey Walter, already known for his \A1\B0mechanical tortoise\A1\B1 (Walter,
1950), built a version capable of a simple form of learning (Walter, 1951). In
1952 Claude Shannon demonstrated a maze-running mouse named Theseus that used
trial and error to find its way through a maze, with the maze itself
remembering the successful directions via magnets and relays under its floor
(Shannon, 1951, 1952). J. A. Deutsch (1954) described a maze-solving machine
based on his behavior theory (Deutsch, 1953) that has some properties in common
with model-based reinforcement learning (Chapter &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;). In his
Ph.D. dis&amp;shy;sertation (Minsky, 1954), Marvin Minsky discussed computational
models of rein&amp;shy;forcement learning and described his construction of an analog
machine composed of components he called SNARCs (Stochastic Neural-Analog
Reinforcement Calcu&amp;shy;lators) meant to resemble modifiable synaptic connections
in the brain (Chapter 15) The fascinating web site cyberneticzoo.com contains a
wealth of information on these and many other electro-mechanical learning
machines.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Building electro-mechanical learning
machines gave way to programming digital computers to perform various types of
learning, some of which implemented trial- and-error learning. Farley and Clark
(1954) described a digital simulation of a neural- network learning machine
that learned by trial and error. But their interests soon shifted from
trial-and-error learning to generalization and pattern recognition, that is,
from reinforcement learning to supervised learning (Clark and Farley, 1955).
This began a pattern of confusion about the relationship between these types of
learn&amp;shy;ing. Many researchers seemed to believe that they were studying
reinforcement learning when they were actually studying supervised learning.
For example, neu&amp;shy;ral network pioneers such as Rosenblatt (1962) and Widrow and
Hoff (1960) were clearly motivated by reinforcement learning\A1\AAthey used the
language of rewards and punishments\A1\AAbut the systems they studied were
supervised learning systems suit&amp;shy;able for pattern recognition and perceptual
learning. Even today, some researchers and textbooks minimize or blur the
distinction between these types of learning. For example, some neural-network
textbooks have used the term \A1\B0trial-and-error\A1\B1 to describe networks that learn
from training examples. This is an understandable con&amp;shy;fusion because these
networks use error information to update connection weights, but this misses
the essential character of trial-and-error learning as selecting actions on the
basis of evaluative feedback that does not rely on knowledge of what the correct
action should be.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Partly as a result of these
confusions, research into genuine trial-and-error learn&amp;shy;ing became rare in the
the 1960s and 1970s, although there were notable exceptions. In the 1960s the
terms \A1\B0reinforcement\A1\B1 and \A1\B0reinforcement learning\A1\B1 were used in the engineering
literature for the first time to describe engineering uses of trial- and-error
learning (e.g., Waltz and Fu, 1965; Mendel, 1966; Fu, 1970; Mendel and
McClaren, 1970). Particularly influential was Minsky\A1\AFs paper \A1\B0Steps Toward Arti&amp;shy;ficial
Intelligence\A1\B1 (Minsky, 1961), which discussed several issues relevant to trial-
and-error learning, including prediction, expectation, and what he called the &lt;span
class=af1&gt;basic credit-assignment problem for complex reinforcement learning
systems&lt;/span&gt;: How do you distribute credit for success among the many
decisions that may have been involved in producing it? All of the methods we
discuss in this book are, in a sense, directed toward solving this problem.
Minsky\A1\AFs paper is well worth reading today.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In the next few paragraphs we discuss some of the
other exceptions and partial exceptions to the relative neglect of
computational and theoretical study of genuine trial-and-error learning in the
1960s and 1970s.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;One of these was the work by a New Zealand
researcher named John Andreae. Andreae (1963) developed a system called STeLLA
that learned by trial and error in interaction with its environment. This
system included an internal model of the world and, later, an \A1\B0internal
monologue\A1\B1 to deal with problems of hidden state (Andreae, 1969a). Andreae\A1\AFs
later work (1977) placed more emphasis on learning from a teacher, but still
included trial and error. Unfortunately, his pioneering research was not well
known, and did not greatly impact subsequent reinforcement learning research.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;More influential was the work of Donald Michie.
In 1961 and 1963 he described a simple trial-and-error learning system for
learning how to play tic-tac-toe (or naughts and crosses) called MENACE (for
Matchbox Educable Naughts and Crosses Engine). It consisted of a matchbox for
each possible game position, each matchbox containing a number of colored
beads, a different color for each possible move from that position. By drawing
a bead at random from the matchbox corresponding to the current game position,
one could determine MENACE\A1\AFs move. When a game was over, beads were added to or
removed from the boxes used during play to reinforce or punish MENACE\A1\AFs
decisions. Michie and Chambers (1968) described another tic-tac-toe
reinforcement learner called GLEE (Game Learning Expectimaxing Engine) and a
reinforcement learning controller called BOXES. They applied BOXES to the task
of learning to balance a pole hinged to a movable cart on the basis of a
failure signal occurring only when the pole fell or the cart reached the end of
a track. This task was adapted from the earlier work of Widrow and Smith
(1964), who used supervised learning methods, assuming instruction from a
teacher already able to balance the pole. Michie and Chambers\A1\AFs version of
pole-balancing is one of the best early examples of a reinforcement learning
task under conditions of incomplete knowledge. It influenced much later work in
reinforcement learning, beginning with some of our own studies (Barto, Sutton,
and Anderson, 1983; Sutton, 1984). Michie consistently emphasized the role of
trial and error and learning as essential aspects of artificial intelligence
(Michie, 1974).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Widrow, Gupta, and Maitra (1973) modified the
Least-Mean-Square (LMS) al&amp;shy;gorithm of Widrow and Hoff (1960) to produce a
reinforcement learning rule that could learn from success and failure signals
instead of from training examples. They called this form of learning \A1\B0selective
bootstrap adaptation\A1\B1 and described it as \A1\B0learning with a critic\A1\B1 instead of
\A1\B0learning with a teacher.\A1\B1 They analyzed this rule and showed how it could
learn to play blackjack. This was an isolated foray into reinforcement learning
by Widrow, whose contributions to supervised learning were much more
influential. Our use of the term \A1\B0critic\A1\B1 is derived from Widrow, Gupta, and
Maitra\A1\AFs paper. Buchanan, Mitchell, Smith, and Johnson (1978) inde&amp;shy;pendently
used the term critic in the context of machine learning (see also Dietterich
and Buchanan, 1984), but for them a critic is an expert system able to do more
than evaluate performance.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Research on &lt;span class=af1&gt;learning automata&lt;/span&gt;
had a more direct influence on the trial-and-error thread leading to modern
reinforcement learning research. These are methods for solving a
nonassociative, purely selectional learning problem known as the &lt;span
class=af1&gt;k-armed bandit&lt;/span&gt; by analogy to a slot machine, or \A1\B0one-armed
bandit,\A1\B1 except with k levers (see Chapter 2). Learning automata are simple,
low-memory machines for improving the probability of reward in these problems.
Learning automata originated with work in the 1960s of the Russian
mathematician and physicist M. L. Tsetlin and colleagues (published
posthumously in Tsetlin, 1973) and has been extensively developed since then
within engineering (see Narendra and Thathachar, 1974, 1989). These devel&amp;shy;opments
included the study of &lt;span class=af1&gt;stochastic learning automata&lt;/span&gt;, which
are methods for updating action probabilities on the basis of reward signals.
Stochastic learning au&amp;shy;tomata were foreshadowed by earlier work in psychology,
beginning with William Estes\A1\AF 1950 effort toward a statistical theory of
learning (Estes, 1950) and further developed by others, most famously by
psychologist Robert Bush and statistician Frederick Mosteller (Bush and
Mosteller, 1955).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The statistical learning theories developed in
psychology were adopted by re&amp;shy;searchers in economics, leading to a thread of
research in that field devoted to reinforcement learning. This work began in
1973 with the application of Bush and Mosteller\A1\AFs learning theory to a
collection of classical economic models (Cross, 1973). One goal of this
research was to study artificial agents that act more like real peo&amp;shy;ple than do
traditional idealized economic agents (Arthur, 1991). This approach expanded to
the study of reinforcement learning in the context of game theory. Although
reinforcement learning in economics developed largely independently of the
early work in artificial intelligence, reinforcement learning and game theory
is a topic of current interest in both fields, but one that is beyond the scope
of this book. Camerer (2003) discusses the reinforcement learning tradition in
economics, and Nowe et al. (2012) provide an overview of the subject from the
point of view of multi-agent extensions to the approach that we introduce in
this book. Rein&amp;shy;forcement learning and game theory is a much different subject
from reinforcement learning used in programs to play tic-tac-toe, checkers, and
other recreational games. See, for example, Szita (&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2012&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) for an
overview of this aspect of reinforcement learning and games.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;John Holland (1975) outlined a general theory of
adaptive systems based on selec&amp;shy;tional principles. His early work concerned
trial and error primarily in its nonasso&amp;shy;ciative form, as in evolutionary
methods and the k-armed bandit. In 1976 and more fully in 1986, he introduced &lt;span
class=af1&gt;classifier systems,&lt;/span&gt; true reinforcement learning systems
including association and value functions. A key component of Holland\A1\AFs
classifier systems was always a &lt;span class=af1&gt;genetic algorithm&lt;/span&gt;, an
evolutionary method whose role was to evolve useful representations. Classifier
systems have been extensively developed by many researchers to form a major
branch of reinforcement learning research (re&amp;shy;viewed by Urbanowicz and Moore,
2009), but genetic algorithms\A1\AAwhich we do not consider to be reinforcement
learning systems by themselves&lt;/span&gt;&lt;span class=MingLiU2&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;have received much more attention, as have other approaches to
evolutionary computation (e.g., Fogel, Owens and Walsh, 1966, and Koza, 1992).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The individual most
responsible for reviving the trial-and-error thread to rein&amp;shy;forcement learning
within artificial intelligence was Harry Klopf (1972, 1975, 1982). Klopf
recognized that essential aspects of adaptive behavior were being lost as learn&amp;shy;ing
researchers came to focus almost exclusively on supervised learning. What was
missing, according to Klopf, were the hedonic aspects of behavior, the drive to
achieve some result from the environment, to control the environment toward
desired ends and away from undesired ends. This is the essential idea of
trial-and-error learning. Klopf\A1\AFs ideas were especially influential on the
authors because our assessment of them (Barto and Sutton, 1981a) led to our
appreciation of the distinction between supervised and reinforcement learning,
and to our eventual focus on reinforcement learning. Much of the early work
that we and colleagues accomplished was directed toward showing that
reinforcement learning and supervised learning were indeed different (Barto,
Sutton, and Brouwer, 1981; Barto and Sutton, 1981b; Barto and Anandan, 1985).
Other studies showed how reinforcement learning could address important problems
in neural network learning, in particular, how it could produce learning
algorithms for multilayer networks (Barto, Anderson, and Sutton, 1982; Barto
and Anderson, 1985; Barto and Anandan, 1985; Barto, 1985, 1986; Barto and
Jordan, 1987). We say more about reinforcement learning and neural networks in
Chapter 15.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;We turn now to the third
thread to the history of reinforcement learning, that concerning
temporal-difference learning. Temporal-difference learning methods are
distinctive in being driven by the difference between temporally successive
estimates of the same quantity&lt;/span&gt;&lt;span class=MingLiU2&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;for example, of the probability of winning in the tic-tac-toe
example. This thread is smaller and less distinct than the other two, but it
has played a particularly important role in the field, in part because
temporal-difference methods seem to be new and unique to reinforcement
learning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The origins of
temporal-difference learning are in part in animal learning psychol&amp;shy;ogy, in
particular, in the notion of &lt;span class=af1&gt;secondary reinforcers.&lt;/span&gt; A secondary
reinforcer is a stimulus that has been paired with a primary reinforcer such as
food or pain and, as a result, has come to take on similar reinforcing
properties. Minsky (1954) may have been the first to realize that this
psychological principle could be important for artificial learning systems.
Arthur Samuel (1959) was the first to propose and implement a learning method
that included temporal-difference ideas, as part of his celebrated
checkers-playing program.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Samuel made no reference to
Minsky\A1\AFs work or to possible connections to animal learning. His inspiration
apparently came from Claude Shannon\A1\AFs (1950) suggestion that a computer could
be programmed to use an evaluation function to play chess, and that it might be
able to improve its play by modifying this function on-line. (It is possible
that these ideas of Shannon\A1\AFs also influenced Bellman, but we know of no
evidence for this.) Minsky (1961) extensively discussed Samuel\A1\AFs work in his
\A1\B0Steps\A1\B1 paper, suggesting the connection to secondary reinforcement theories,
both natural&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:1.5pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;and
artificial.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;As we have discussed, in the
decade following the work of Minsky and Samuel, little computational work was
done on trial-and-error learning, and apparently no computational work at all
was done on temporal-difference learning. In &lt;/span&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;1972, &lt;/span&gt;&lt;span lang=EN-US&gt;Klopf brought
trial-and-error learning together with an important component of
temporal-difference learning. Klopf was interested in principles that would
scale to learning in large systems, and thus was intrigued by notions of local
reinforcement, whereby subcomponents of an overall learning system could
reinforce one another. He developed the idea of \A1\B0generalized reinforcement,\A1\B1
whereby every component (nominally, every neuron) views all of its inputs in
reinforcement terms: excitatory inputs as rewards and inhibitory inputs as
punishments. This is not the same idea as what we now know as
temporal-difference learning, and in retrospect it is farther from it than was
Samuel\A1\AFs work. On the other hand, Klopf linked the idea with trial-and-error
learning and related it to the massive empirical database of animal learning
psychology.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Sutton (1978a, 1978b, 1978c)
developed Klopf\A1\AFs ideas further, particularly the links to animal learning
theories, describing learning rules driven by changes in tem&amp;shy;porally successive
predictions. He and Barto refined these ideas and developed a psychological
model of classical conditioning based on temporal-difference learning (Sutton
and Barto, 1981a; Barto and Sutton, 1982). There followed several other in&amp;shy;fluential
psychological models of classical conditioning based on temporal-difference
learning (e.g., Klopf, 1988; Moore et al., 1986; Sutton and Barto, 1987, 1990).
Some neuroscience models developed at this time are well interpreted in terms
of temporal- difference learning (Hawkins and Kandel, 1984; Byrne, Gingrich,
and Baxter, 1990; Gelperin, Hopfield, and Tank, 1985; Tesauro, 1986; Friston et
al., 1994), although in most cases there was no historical connection.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Our early work on
temporal-difference learning was strongly influenced by animal learning
theories and by Klopf\A1\AFs work. Relationships to Minsky\A1\AFs \A1\B0Steps\A1\B1 paper and to
Samuel\A1\AFs checkers players appear to have been recognized only afterward. By
1981, however, we were fully aware of all the prior work mentioned above as
part of the temporal-difference and trial-and-error threads. At this time we
developed a method for using temporal-difference learning in trial-and-error
learning, known as the &lt;span class=af1&gt;actor- critic architecture&lt;/span&gt;, and
applied this method to Michie and Chambers\A1\AFs pole-balancing problem (Barto,
Sutton, and Anderson, 1983). This method was extensively studied in Sutton\A1\AFs
(1984) Ph.D. dissertation and extended to use backpropagation neural networks
in Anderson\A1\AFs (1986) Ph.D. dissertation. Around this time, Holland (1986)
incorporated temporal-difference ideas explicitly into his classifier systems.
A key step was taken by Sutton in 1988 by separating temporal-difference
learning from control, treating it as a general prediction method. That paper
also introduced the TD(A) algorithm and proved some of its convergence
properties.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;As we were finalizing our work
on the actor-critic architecture in 1981, we discov&amp;shy;ered a paper by Ian Witten
(1977) that contains the earliest known publication of a temporal-difference
learning rule. He proposed the method that we now call tabular TD(0) for use as
part of an adaptive controller for solving MDPs. Witten\A1\AFs work was a descendant
of Andreae\A1\AFs early experiments with STeLLA and other trial-and- error learning
systems. Thus, Witten\A1\AFs 1977 paper spanned both major threads of reinforcement
learning research\A1\AAtrial-and-error learning and optimal control\A1\AAwhile making a
distinct early contribution to temporal-difference learning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The temporal-difference and
optimal control threads were fully brought together in 1989 with Chris
Watkins\A1\AFs development of Q-learning. This work extended and integrated prior
work in all three threads of reinforcement learning research. Paul Werbos
(1987) contributed to this integration by arguing for the convergence of trial-
and-error learning and dynamic programming since 1977. By the time of Watkins\A1\AFs
work there had been tremendous growth in reinforcement learning research,
primarily in the machine learning subfield of artificial intelligence, but also
in neural networks and artificial intelligence more broadly. In 1992, the
remarkable success of Gerry Tesauro\A1\AFs backgammon playing program, TD-Gammon,
brought additional attention to the field.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In the time since publication
of the first edition of this book, a flourishing subfield of neuroscience
developed that focuses on the relationship between reinforcement learning
algorithms and reinforcement learning in the nervous system. Most respon&amp;shy;sible
for this is an uncanny similarity between the behavior of temporal-difference
algorithms and the activity of dopamine producing neurons in the brain, as
pointed out by a number of researchers (Friston et al., 1994; Barto, 1995a;
Houk, Adams, and Barto, 1995; Montague, Dayan, and Sejnowski, 1996; and
Schultz, Dayan, and Montague, 1997). Chapter 15 provides an introduction to
this exciting aspect of reinforcement learning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Other important contributions made in the recent history of
reinforcement learning are too numerous to mention in this brief account; we
cite many of these at the end of the individual chapters in which they arise.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;line-height:13.0pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark24&gt;&lt;span lang=EN-US&gt;Bibliographical Remarks&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For additional general coverage of
reinforcement learning, we refer the reader to the books by Szepesvari (2010),
Bertsekas and Tsitsiklis (1996), Kaelbling (1993a), and Masashi Sugiyama et al.
(2013). Books that take a control or operations research perspective are those
of Si et al. (2004), Powell (2011), Lewis and Liu (2012), and Bertsekas (2012).
Cao\A1\AFs (2009) review places reinforcement learning in the context of other
approaches to learning and optimization of stochastic dynamic systems Three
special issues of the journal &lt;span class=af1&gt;Machine Learning&lt;/span&gt; focus on
reinforcement learning: Sut&amp;shy;ton (1992), Kaelbling (1996), and Singh (2002).
Useful surveys are provided by Barto (1995b); Kaelbling, Littman, and Moore
(1996); and Keerthi and Ravindran (1997). The volume edited by Weiring and van
Otterlo (2012) provides an excellent overview of recent developments.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The example of Phil\A1\AFs
breakfast in this chapter was inspired by Agre (1988). We direct the reader to
Chapter &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; for references to the kind of temporal-difference method we used in
the tic-tac-toe example.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection16&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;As we shall see in Chapter &lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;3, &lt;/span&gt;&lt;span lang=EN-US&gt;the
theory of reinforcement learning as we treat it in this book is based on
maximizing the expected value of the amount of reward an agent can accumulate
over its future. This is in consistent with the classic principle of von
Neumann and Morgenstern (1944) that rational decisions are those that maxi&amp;shy;mize
expected utility. However, maximizing the expected value of a random quantity
is often not the right thing to do because it ignores the quantity\A1\AFs variance,
which is said to underly &lt;span class=af1&gt;risk&lt;/span&gt;. Risk-sensitive
optimization has been highly developed in fields where excessive risk can be
ruinous, such as in finance and optimal control. Risk is important for
reinforcement learning as well but beyond our scope here. Heger (1994), Geibel
(2001), Mihatsch and Neuneier (2002), and Borkar (2002) are exam&amp;shy;ples of papers
that consider risk in reinforcement learning, developing risk-sensitive
versions of some of the algorithms we present here. Coraluppi and Marcus (1999)
dis&amp;shy;cuss risk in the context of discrete-time, finite-state Markov decision
processes that form the basis of our approach to reinforcement learning. We also
wholly sidestep utility theory, which is concerned with measuring people\A1\AFs
desires. Utility theory would be relevant if we were treating reinforcement
learning as a theory of human economic behavior, and some of accounts of
reinforcement learning equate reward with utility (e.g., Russell and Norvig,
2010). Since that is not our aim here, however, we leave connections with
utility theory to others.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection17&gt;

&lt;p class=106 style=&#39;margin-bottom:62.15pt;line-height:19.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a name=bookmark25&gt;&lt;span lang=EN-US&gt;Part I:
Tabular Solution Methods&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In this part of the book we
describe almost all the core ideas of reinforcement learning algorithms in
their simplest forms: that in which the state and action spaces are small
enough for the approximate value functions to be represented as arrays, or &lt;span
class=af1&gt;tables&lt;/span&gt;. In this case, the methods can often find exact
solutions, that is, they can often find exactly the optimal value function and
the optimal policy. This contrasts with the approximate methods described in
the next part of the book, which only find approximate solutions, but which in
return can be applied effectively to much larger problems.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The first chapter of this part
of the book describes solution methods for the special case of the
reinforcement learning problem in which there is only a single state, called &lt;span
class=af1&gt;bandit problems&lt;/span&gt;. The second chapter describes the general
problem formulation that we treat throughout the rest of the book&lt;span
class=af1&gt;\A1\AAfinite Markov decision processes&lt;/span&gt;\A1\AAand its main ideas including
Bellman equations and value functions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The next three chapters
describe three fundamental classes of methods for solving finite Markov decision
problems: dynamic programming, Monte Carlo methods, and temporal-difference
learning. Each class of methods has its strengths and weaknesses. Dynamic
programming methods are well developed mathematically, but require a complete
and accurate model of the environment. Monte Carlo methods don\A1\AFt re&amp;shy;quire a
model and are conceptually simple, but are not well suited for step-by-step
incremental computation. Finally, temporal-difference methods require no model
and are fully incremental, but are more complex to analyze. The methods also
differ in several ways with respect to their efficiency and speed of
convergence.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The remaining two chapters
describe how these three classes of methods can be combined to obtain the best
features of each of them. In one chapter we describe how the strengths of Monte
Carlo methods can be combined with the strengths of temporal-difference methods
via the use of eligibility traces. In the final chapter of this part of the
book we show how temporal-difference learning methods can be com&amp;shy;bined with
model learning and planning methods (such as dynamic programming) for a
complete and unified solution to the tabular reinforcement learning problem.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection18&gt;

&lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;26&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection19&gt;

&lt;p class=8a style=&#39;margin-bottom:29.1pt;line-height:19.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a name=bookmark26&gt;&lt;span lang=EN-US&gt;Chapter 2&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f8 align=left style=&#39;margin-bottom:37.55pt;text-align:left;
line-height:22.0pt;mso-line-height-rule:exactly;mso-pagination:lines-together;
page-break-after:avoid;background:transparent&#39;&gt;&lt;a name=bookmark27&gt;&lt;span
lang=EN-US&gt;Multi-armed Bandits&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The most important feature distinguishing
reinforcement learning from other types of learning is that it uses training
information that &lt;span class=af1&gt;evaluates&lt;/span&gt; the actions taken rather than
&lt;span class=af1&gt;instructs&lt;/span&gt; by giving correct actions. This is what
creates the need for active ex&amp;shy;ploration, for an explicit trial-and-error
search for good behavior. Purely evaluative feedback indicates how good the
action taken is, but not whether it is the best or the worst action possible.
Purely instructive feedback, on the other hand, indicates the correct action to
take, independently of the action actually taken. This kind of feedback is the
basis of supervised learning, which includes large parts of pat&amp;shy;tern classification,
artificial neural networks, and system identification. In their pure forms,
these two kinds of feedback are quite distinct: evaluative feedback depends
entirely on the action taken, whereas instructive feedback is independent of
the ac&amp;shy;tion taken. There are also interesting intermediate cases in which
evaluation and instruction blend together.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In this chapter we study the evaluative aspect of
reinforcement learning in a sim&amp;shy;plified setting, one that does not involve
learning to act in more than one situation. This &lt;span class=af1&gt;nonassociative&lt;/span&gt;
setting is the one in which most prior work involving evaluative feedback has
been done, and it avoids much of the complexity of the full reinforce&amp;shy;ment
learning problem. Studying this case will enable us to see most clearly how
evaluative feedback differs from, and yet can be combined with, instructive
feedback.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The particular nonassociative, evaluative
feedback problem that we explore is a simple version of the k-armed bandit
problem. We use this problem to introduce a number of basic learning methods
which we extend in later chapters to apply to the full reinforcement learning
problem. At the end of this chapter, we take a step closer to the full
reinforcement learning problem by discussing what happens when the bandit
problem becomes associative, that is, when actions are taken in more than one
situation.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l44 level1 lfo7;
tab-stops:36.5pt;background:transparent&#39;&gt;&lt;a name=bookmark28&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;2.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;A k-armed Bandit Problem&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Consider the following learning
problem. You are faced repeatedly with a choice among &lt;span class=af1&gt;k&lt;/span&gt;
different options, or actions. After each choice you receive a numerical reward
chosen from a stationary probability distribution that depends on the action
you selected. Your objective is to maximize the expected total reward over some
time period, for example, over &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1000&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; action selections,
or &lt;span class=af1&gt;time steps&lt;/span&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;This is the original form of
the &lt;span class=af1&gt;k-armed bandit problem&lt;/span&gt;, so named by analogy to a
slot machine, or \A1\B0one-armed bandit,\A1\B1 except that it has &lt;span class=af1&gt;k&lt;/span&gt;
levers instead of one. Each action selection is like a play of one of the slot
machine\A1\AFs levers, and the rewards are the payoffs for hitting the jackpot.
Through repeated action selections you are to maximize your winnings by
concentrating your actions on the best levers. Another analogy is that of a
doctor choosing between experimental treatments for a series of seriously ill
patients. Each action selection is a treatment selection, and each reward is
the survival or well-being of the patient. Today the term \A1\B0bandit problem\A1\B1 is
sometimes used for a generalization of the problem described above, but in this
book we use it to refer just to this simple case.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In our &lt;span class=af1&gt;k&lt;/span&gt;-armed bandit problem, each of the &lt;span
class=af1&gt;k&lt;/span&gt; actions has an expected or mean reward given that that
action is selected; let us call this the &lt;span class=af1&gt;value&lt;/span&gt; of that
action. We denote the action selected on time step &lt;span class=af1&gt;t&lt;/span&gt; as &lt;span
class=af1&gt;At,&lt;/span&gt; and the corresponding reward as R. The value then of an
arbitrary action &lt;span class=af1&gt;a,&lt;/span&gt; denoted &lt;span class=af1&gt;q^(a),&lt;/span&gt;
is the expected reward given that &lt;span class=af1&gt;a&lt;/span&gt; is selected:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.25pt;
margin-left:28.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;q*(a) == E[R | At = a].&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If you knew the value of each action,
then it would be trivial to solve the &lt;span class=af1&gt;k&lt;/span&gt;-armed bandit
problem: you would always select the action with highest value. We as&amp;shy;sume that
you do not know the action values with certainty, although you may have
estimates. We denote the estimated value of action &lt;span class=af1&gt;a&lt;/span&gt; at
time t as &lt;span class=af1&gt;Qt(a)&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiU4&gt;&lt;span
style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\B0\D1&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;q^(a).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If you maintain estimates of
the action values, then at any time step there is at least one action whose
estimated value is greatest. We call these the &lt;span class=af1&gt;greedy&lt;/span&gt;
actions. When you select one of these actions, we say that you are &lt;span
class=af1&gt;exploiting&lt;/span&gt; your current knowledge of the values of the
actions. If instead you select one of the nongreedy actions, then we say you
are &lt;span class=af1&gt;exploring&lt;/span&gt;, because this enables you to improve your
estimate of the nongreedy action\A1\AFs value. Exploitation is the right thing to do
to maximize the expected reward on the one step, but exploration may produce
the greater total reward in the long run. For example, suppose a greedy
action\A1\AFs value is known with certainty, while several other actions are
estimated to be nearly as good but with substantial uncertainty. The
uncertainty is such that at least one of these other actions probably is
actually better than the greedy action, but you don\A1\AFt know which one. If you have
many time steps ahead on which to make action selections, then it may be better
to explore the nongreedy actions and discover which of them are better than the
greedy action. Reward is lower in the short run, during exploration, but higher
in the long run because after you have discovered the better actions, you can
exploit &lt;span class=af1&gt;them&lt;/span&gt; many times. Because it is not possible both
to explore &lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection20&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;and to exploit with any single
action selection, one often refers to the \A1\B0conflict\A1\B1 between exploration and
exploitation.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In any specific case, whether it is better to
explore or exploit depends in a com&amp;shy;plex way on the precise values of the
estimates, uncertainties, and the number of remaining steps. There are many
sophisticated methods for balancing exploration and exploitation for particular
mathematical formulations of the k-armed bandit and related problems. However,
most of these methods make strong assumptions about stationarity and prior
knowledge that are either violated or impossible to verify in applications and in
the full reinforcement learning problem that we consider in sub&amp;shy;sequent
chapters. The guarantees of optimality or bounded loss for these methods are of
little comfort when the assumptions of their theory do not apply.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In this book we do not worry about balancing exploration and
exploitation in a sophisticated way; we worry only about balancing them at all.
In this chapter we present several simple balancing methods for the k-armed
bandit problem and show that they work much better than methods that always
exploit. The need to balance exploration and exploitation is a distinctive
challenge that arises in reinforcement learning; the simplicity of the k-armed
bandit problem enables us to show this in a particularly clear form.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l44 level1 lfo7;
tab-stops:37.5pt;background:transparent&#39;&gt;&lt;a name=bookmark29&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;2.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Action-value Methods&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;We begin by looking more closely at some simple methods for
estimating the values of actions and for using the estimates to make action
selection decisions. Recall that the true value of an action is the mean reward
when that action is selected. One natural way to estimate this is by averaging
the rewards actually received:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.2pt;
margin-left:70.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 299.45pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;sum of rewards when &lt;span class=af1&gt;a&lt;/span&gt;
taken prior to t&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;E^&lt;sup&gt;-&lt;/sup&gt;} &lt;span
class=af1&gt;Ri&lt;/span&gt; \A1\F6 &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;A^=a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.5pt;
margin-left:80.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 323.1pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;number of times &lt;span class=af1&gt;a&lt;/span&gt;
taken prior to t&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;span
class=af1&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span class=Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:
5.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=af1&gt;&lt;span lang=EN-US&gt;i\A1\AA \&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;A-=a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;where &lt;/span&gt;&lt;span class=Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=af1&gt;&lt;span
lang=EN-US&gt; predicate&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; denotes the random
variable that is &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; if &lt;span class=af1&gt;predicate&lt;/span&gt; is
true and &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; if it is not. If the denominator is zero, then we instead define
Qt(a) as some default value, such as Qi(a) = &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. As the
denominator goes to infinity, by the law of large numbers, Qi(a) converges to &lt;span
class=af1&gt;q*&lt;/span&gt;(a). We call this the &lt;span class=af1&gt;sample-average&lt;/span&gt;
method for estimating action values because each estimate is an average of the
sample of relevant rewards. Of course this is just one way to estimate action
values, and not necessarily the best one. Nevertheless, for now let us stay
with this simple estimation method and turn to the question of how the
estimates might be used to select actions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The simplest action selection rule is to select the action (or one
of the actions) with highest estimated action value, that is, to select at step
t one of the greedy actions, A*, for which Qt(A*) = max&lt;sub&gt;a&lt;/sub&gt;Qt(a). This &lt;span
class=af1&gt;greedy&lt;/span&gt; action selection method can be written as&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;v:shape
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    class=0ptExact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
    class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;At == argmax Qt(a),&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f style=&#39;margin-left:70.0pt;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where argmax&lt;sub&gt;a&lt;/sub&gt; denotes the value of &lt;span class=af1&gt;a&lt;/span&gt;
at which the expression that follows is maxi&amp;shy;mized (with ties broken
arbitrarily). Greedy action selection always exploits current knowledge to
maximize immediate reward; it spends no time at all sampling appar&amp;shy;ently
inferior actions to see if they might really be better. A simple alternative is
to behave greedily most of the time, but every once in a while, say with small
probabil&amp;shy;ity ^, instead to select randomly from amongst all the actions with
equal probability independently of the action-value estimates. We call methods
using this near-greedy action selection rule &lt;span class=af1&gt;&amp;pound;-greedy&lt;/span&gt;
methods. An advantage of these methods is that, in the limit as the number of
steps increases, every action will be sampled an infinite number of times, thus
ensuring that all the &lt;span class=af1&gt;Qt(a)&lt;/span&gt; converge to &lt;/span&gt;&lt;span
class=MingLiU2&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;\81\96&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(a). This of course implies that the probability of selecting the
optimal action converges to greater than 1 \A1\AA &amp;pound;, that is, to near certainty.
These are just asymptotic guarantees, however, and say little about the
practical effectiveness of the methods.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Exercise 2.1 In &amp;pound;-greedy action selection, for the case of two
actions and &lt;span class=af1&gt;&amp;pound;&lt;/span&gt; = 0.5, what is the probability that the
greedy action is selected?&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 398.9pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 2.2: &lt;span class=af1&gt;Bandit
example&lt;/span&gt; Consider a multi-armed bandit problem with &lt;span class=af1&gt;k&lt;/span&gt;
= 4 actions, denoted 1, 2, 3, and 4. Consider applying to this problem a bandit
algorithm using &lt;span class=af1&gt;&amp;pound;&lt;/span&gt;-greedy action selection, sample-average
action-value estimates, and initial estimates of Qi(a) = 0, Va. Suppose the
initial sequence of actions and rewards is Ai = 1, &lt;span class=af1&gt;Ri&lt;/span&gt; =
1, &lt;span class=af1&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span class=Georgia&gt;&lt;span lang=EN-US
style=&#39;font-size:5.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = 2, &lt;span class=af1&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; = 1, A&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;3&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = 2, &lt;span class=af1&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;3&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; = 2, &lt;span class=af1&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span class=Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;4&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = 2, &lt;span
class=af1&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span class=Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:
5.5pt&#39;&gt;4&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = 2, A&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;5&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = 3, &lt;span
class=af1&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span class=Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:
5.5pt&#39;&gt;5&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = 0. On some of these time steps the &lt;span
class=af1&gt;&amp;pound;&lt;/span&gt; case may have occurred, causing an action to be selected at
random. On which time steps did this definitely occur? On which time steps
could this possibly have occurred?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
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tab-stops:36.5pt;background:transparent&#39;&gt;&lt;a name=bookmark30&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;2.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;The 10-armed Testbed&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;To roughly assess the relative
effectiveness of the greedy and &lt;span class=af1&gt;&amp;pound;&lt;/span&gt;-greedy methods, we
compared them numerically on a suite of test problems. This was a set of 2000
randomly generated &lt;span class=af1&gt;k&lt;/span&gt;-armed bandit problems with &lt;span
class=af1&gt;k&lt;/span&gt; = 10. For each bandit problem, such as that shown in Figure
2.1, the action values, &lt;span class=af1&gt;q^(a), a&lt;/span&gt; = &lt;span class=1pt0&gt;1,...,&lt;/span&gt;
10, were selected according to a normal (Gaussian) distribution with mean 0 and
variance 1. Then, when a learning method applied to that problem selected
action At at time &lt;span class=af1&gt;t,&lt;/span&gt; the actual reward &lt;span class=af1&gt;Rt&lt;/span&gt;
was selected from a normal distribution with mean q^(At) and variance 1. It is
these distributions which are shown as gray in Figure 2.1. We call this suite
of test tasks the &lt;span class=af1&gt;10-armed testbed.&lt;/span&gt; For any learning
method, we can measure its performance and behavior as it improves with
experience over &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1000&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; steps interacting with one of the bandit problem. This makes up one
&lt;span class=af1&gt;run&lt;/span&gt;. Repeating this for &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2000&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;
independent runs with a different bandit problem, we obtained measures of the
learning algorithm\A1\AFs average behavior.&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Figure 2.2 compares a greedy method with two
^-greedy methods &lt;span class=af1&gt;(s&lt;/span&gt; = 0.01 and &lt;span class=af1&gt;e&lt;/span&gt;
= 0.1), as described above, on the 10-armed testbed. Both methods formed their
action-value estimates using the sample-average technique. The upper graph
shows the increase in expected reward with experience. The greedy method
improved slightly faster than the other methods at the very beginning, but then
leveled off at a lower level. It achieved a reward per step of only about 1,
compared with the best possible of about 1.55 on this testbed. The greedy
method performs significantly worse in the long run because it often gets stuck
performing suboptimal actions. The lower graph shows that the greedy method
found the optimal action in only approximately one-third of the tasks. In the
other two-thirds, its initial samples of the optimal action were disappointing,
and it never returned to it. The e-greedy methods eventually perform better
because they continue to explore and to improve their chances of recognizing
the optimal action. The e = 0.1 method explores more, and usually finds the
optimal action earlier, but never selects it more than 91% of the time. The e =
0.01 method improves more slowly, but eventually would perform better than the
e = 0.1 method on both performance measures. It is also possible to reduce &lt;span
class=af1&gt;e&lt;/span&gt; over time to try to get the best of both high and low
values.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
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class=af1&gt;e&lt;/span&gt;-greedy over greedy methods depends on the task. For example,
suppose the reward variance had been larger, say 10 instead of 1. With noisier&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
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&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection21&gt;

&lt;p class=124 style=&#39;line-height:6.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;r = 0.01&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection22&gt;

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lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
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&lt;div class=WordSection23&gt;

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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection27&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:8.8pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;rewards it takes more exploration to find the optimal action, and
e-greedy methods should fare even better relative to the greedy method. On the
other hand, if the reward variances were zero, then the greedy method would
know the true value of each action after trying it once. In this case the
greedy method might actually perform best because it would soon find the
optimal action and then never explore. But even in the deterministic case,
there is a large advantage to exploring if we weaken some of the other
assumptions. For example, suppose the bandit task were nonstationary, that is,
that the true values of the actions changed over time. In this case exploration
is needed even in the deterministic case to make sure one of the nongreedy
actions has not changed to become better than the greedy one. As we will see in
the next few chapters, effective nonstationarity is the case most commonly
encountered in reinforcement learning. Even if the underlying task is
stationary and deterministic, the learner faces a set of banditlike decision
tasks each of which changes over time as learning proceeds and the agent\A1\AFs
policy changes. Reinforcement learning requires a balance between exploration
and exploitation.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 2.3 In the comparison shown in Figure
2.2, which method will perform best in the long run in terms of cumulative
reward and cumulative probability of selecting the best action? How much better
will it be? Express your answer quantitatively. \A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection28&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l44 level1 lfo7;
tab-stops:36.25pt;background:transparent&#39;&gt;&lt;a name=bookmark31&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;2.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Incremental Implementation&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The action-value methods we have discussed so far
all estimate action values as sample averages of observed rewards. We now turn
to the question of how these averages can be computed in a computationally
efficient manner, in particular, with constant memory and per-time-step
computation.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;To simplify notation we concentrate on a single
action. Let &lt;span class=af1&gt;Ri&lt;/span&gt; now denote the reward received after the
ith selection &lt;span class=af1&gt;of this action,&lt;/span&gt; and let &lt;span class=af1&gt;Q&lt;sub&gt;n&lt;/sub&gt;&lt;/span&gt;
denote the estimate of its action value after it has been selected &lt;span
class=af1&gt;n&lt;/span&gt; \A1\AA &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; times, which we can now write simply as&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:58.0pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=af1&gt;&lt;span
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lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + ... + &lt;span
class=af1&gt;Rn\A1\AA&lt;/span&gt; &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f align=left style=&#39;margin-left:28.0pt;text-align:left;line-height:
9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;Q&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/p&gt;

&lt;p class=153 style=&#39;margin-left:96.0pt;background:transparent&#39;&gt;&lt;span
class=1595pt&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;\A1\AA1&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The obvious implementation would be to maintain a
record of all the rewards and then perform this computation whenever the
estimated value was needed. However, in this case the memory and computational
requirements would grow over time as more rewards are seen. Each additional
reward would require more memory to store it and more computation to compute
the sum in the numerator.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;As you might suspect, this is not really
necessary. It is easy to devise incremental formulas for updating averages with
small, constant computation required to process each new reward. Given &lt;span
class=af1&gt;Qn&lt;/span&gt; and the nth reward, &lt;span class=af1&gt;Rn,&lt;/span&gt; the new
average of all &lt;span class=af1&gt;n&lt;/span&gt; rewards can be computed by&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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computation (2.3) for each new reward. Pseudocode for a complete bandit
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action selection is shown in the box. The function &lt;span class=af1&gt;bandit(a)&lt;/span&gt;
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  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(2.4)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
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  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;The update rule (2.3) is of a form that occurs frequently
throughout this book. The general form is&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f style=&#39;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;NewEstimate OldEstimate&lt;/span&gt;&lt;span class=41&gt;&lt;span
lang=EN-US style=&#39;font-style:normal&#39;&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;StepSize
Target&lt;/span&gt;&lt;span class=41&gt;&lt;span lang=EN-US style=&#39;font-style:normal&#39;&gt; \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;OldEstimate&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.15pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span
class=af7&gt;&lt;span lang=EN-US&gt;A simple bandit algorithm&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:11.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize, for &lt;span class=af1&gt;a&lt;/span&gt; = &lt;/span&gt;&lt;span
class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; to &lt;span class=af1&gt;k&lt;/span&gt;:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:297.0pt;margin-bottom:10.8pt;
margin-left:24.0pt;text-indent:0cm;line-height:11.75pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Q(a) ^ 0 &lt;span class=af1&gt;N&lt;/span&gt;(a)
^ &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Repeat forever:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:45.0pt;margin-bottom:0cm;
margin-left:59.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:12.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;arg max&lt;sub&gt;a&lt;/sub&gt;
Q(a) with probability 1 \A1\AA e (breaking ties randomly) a random action with
probability &lt;span class=af1&gt;e&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:24.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=af1&gt;&lt;span lang=EN-US&gt;R ^&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; bandit (A)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:24.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=af1&gt;&lt;span lang=EN-US&gt;N&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(A) ^ &lt;span class=af1&gt;N&lt;/span&gt;(A&lt;/span&gt;&lt;span class=MingLiU2&gt;&lt;span
lang=EN-US style=&#39;font-size:11.5pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiU2&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;1&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:50.55pt;
margin-left:24.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;Q&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;(&lt;sup&gt;A&lt;/sup&gt;) ^ &lt;/span&gt;&lt;span
class=MingLiU2&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:11.5pt&#39;&gt;Q&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=MingLiU2&gt;&lt;span lang=EN-US style=&#39;font-size:11.5pt&#39;&gt;(&lt;sup&gt;A&lt;/sup&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiU2&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;nA) [&lt;sup&gt;r \A1\AA Q&lt;/sup&gt;(&lt;sup&gt;A&lt;/sup&gt;)]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The expression &lt;span class=af1&gt;[Target&lt;/span&gt; \A1\AA &lt;span
class=af1&gt;OldEstimat^&lt;/span&gt; is an &lt;span class=af1&gt;error&lt;/span&gt; in the
estimate. It is reduced by taking a step toward the \A1\B0Target.\A1\B1 The target is
presumed to indicate a desirable direction in which to move, though it may be
noisy. In the case above, for example, the target is the nth reward.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:78.35pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Note that the step-size parameter &lt;span class=af1&gt;(StepSize)&lt;/span&gt;
used in the incremental method described above changes from time step to time
step. In processing the nth reward for action &lt;span class=af1&gt;a,&lt;/span&gt; that
method uses a step-size parameter of n. In this book we denote the step-size
parameter by the symbol &lt;span class=af1&gt;a&lt;/span&gt; or, more generally, by at (a).
We sometimes use the informal shorthand a = n to refer to this case, leaving
the dependence of &lt;span class=af1&gt;n &lt;/span&gt;on the action implicit, just as we
have in this section.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:21.55pt;
margin-left:2.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l44 level1 lfo7;
tab-stops:38.5pt;background:transparent&#39;&gt;&lt;a name=bookmark32&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;2.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Tracking a Nonstationary
Problem&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:49.55pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The averaging methods discussed so far are appropriate in a
stationary environment, but not if the bandit is changing over time. As noted
earlier, we often encounter reinforcement learning problems that are
effectively nonstationary. In such cases it makes sense to weight recent
rewards more heavily than long-past ones. One of the most popular ways of doing
this is to use a constant step-size parameter. For example, the incremental
update rule (2.3) for updating an average &lt;span class=af1&gt;Q&lt;sub&gt;n&lt;/sub&gt;&lt;/span&gt;
of the &lt;span class=af1&gt;n&lt;/span&gt; \A1\AA 1 past rewards is modified to be&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:24.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;
tab-stops:right 394.55pt;background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;Q&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;n&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;sup&gt;= Q&lt;/sup&gt;n &lt;/span&gt;&lt;span class=MingLiU2&gt;&lt;span style=&#39;font-size:
11.5pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW&#39;&gt; &lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;a &lt;span class=af1&gt;R&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;span
class=af1&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;sup&gt;\A1\AA Q&lt;/sup&gt;n ,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(2&lt;/sup&gt;.&lt;sup&gt;5)&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:7.4pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where the step-size parameter &lt;span class=af1&gt;a E&lt;/span&gt; &lt;span
class=1pt0&gt;(0,1&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;]&lt;a style=&#39;mso-footnote-id:ftn1&#39; href=&#34;#_ftn1&#34;
name=&#34;_ftnref1&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=9pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[1]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; is constant. This results in &lt;span class=af1&gt;Q&lt;sub&gt;n&lt;/sub&gt;+&lt;/span&gt;
i being a weighted average of past rewards and the initial estimate Q :&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:19.45pt;mso-line-height-rule:exactly;
tab-stops:right 70.5pt left 81.3pt;background:transparent&#39;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;Q&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;n+ &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;=&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;Q&lt;/sup&gt;n + &lt;sup&gt;a R&lt;/sup&gt;n
&lt;sup&gt;\A1\AA Q&lt;/sup&gt;n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:63.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:19.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=3pt&gt;&lt;span lang=EN-US&gt;=&lt;sup&gt;aR&lt;/sup&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + &lt;/span&gt;&lt;span class=9pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt; \A1\AA a)Q&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:63.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=3pt&gt;&lt;span lang=EN-US&gt;=&lt;sup&gt;aR&lt;/sup&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + &lt;/span&gt;&lt;span class=9pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt; \A1\AA a)&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; [&lt;sup&gt;aR&lt;/sup&gt;n- &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;span
class=9pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt; \A1\AA a)Q&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;n- &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;]&lt;/span&gt;&lt;/sup&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:63.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:16.3pt;mso-line-height-rule:exactly;
tab-stops:right 113.95pt center 120.5pt left 126.65pt;background:transparent&#39;&gt;&lt;span
class=3pt&gt;&lt;span lang=EN-US&gt;=aRn&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;+&lt;span style=&#39;mso-tab-count:
1&#39;&gt; &lt;/span&gt;(1&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;\A1\AA a)aRn- &lt;/span&gt;&lt;span
class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + (1 \A1\AA a)&lt;/span&gt;&lt;a style=&#39;mso-footnote-id:ftn2&#39; href=&#34;#_ftn2&#34;
name=&#34;_ftnref2&#34; title=&#34;&#34;&gt;&lt;span class=9pt0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=9pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[2]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
lang=EN-US&gt;Qn- &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:63.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:16.3pt;mso-line-height-rule:exactly;
tab-stops:right 113.95pt center 120.5pt left 126.65pt;background:transparent&#39;&gt;&lt;span
class=3pt&gt;&lt;span lang=EN-US&gt;=aRn&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;+&lt;span style=&#39;mso-tab-count:
1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;\A1\AA a)aRn- &lt;/span&gt;&lt;span
class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; \A1\AA a)&lt;/span&gt;&lt;span class=9pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;aRn&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;-2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; +&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:143.0pt;text-indent:0cm;line-height:16.3pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;&amp;#8226;&amp;#8226;&amp;#8226; + &lt;/span&gt;&lt;span
class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; \A1\AA a)&lt;sup&gt;n-&lt;/sup&gt;&lt;/span&gt;&lt;span class=9pt0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;aR&lt;/span&gt;&lt;span
class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; \A1\AA a)&lt;sup&gt;n&lt;/sup&gt;Q&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:153.0pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:63.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:right 401.05pt;background:transparent&#39;&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;=(1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; \A1\AA a)&lt;sup&gt;n&lt;/sup&gt;Q&lt;/span&gt;&lt;span
class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + J] a&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; \A1\AA a)&lt;sup&gt;n-i&lt;/sup&gt;Ri.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;span
class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=153 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.7pt;
margin-left:153.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=1595pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;=1&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 104.2pt 113.95pt center 120.5pt left 126.65pt center 306.5pt right 338.9pt left 341.45pt right 401.05pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;We call this a weighted average
because the sum of the weights is (1\A1\AAa)&lt;sup&gt;n&lt;/sup&gt;+En&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;=1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; a(1 \A1\AA a)&lt;sup&gt;n-i&lt;/sup&gt;
= 1, as you can check for yourself. Note that the weight, a(1 \A1\AA a)&lt;sup&gt;n-i&lt;/sup&gt;,
given to the reward Ri depends on how many rewards ago, &lt;span class=af1&gt;n&lt;/span&gt;
\A1\AA i, it was observed. The quantity 1\A1\AAa is less than 1, and thus the weight
given to Ri decreases as the number of intervening rewards increases. In fact,
the weight decays exponentially according to the exponent&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;on 1&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\AA&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;a.&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(If 1 \A1\AA a = 0, then all the weight&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;goes&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;on&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;the&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;very
last&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
center 52.1pt left 57.4pt center 120.5pt 318.05pt left 341.45pt center 352.85pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;reward,&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Rn,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;because
of&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;the
convention that 0&lt;/span&gt;&lt;span class=9pt0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = 1.)
Accordingly,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;this&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;is&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;sometimes&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f style=&#39;margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=41&gt;&lt;span lang=EN-US
style=&#39;font-style:normal&#39;&gt;called an &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;exponential,
recency-weighted average.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:18.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Sometimes it is convenient to vary the step-size parameter from step
to step. Let an (a) denote the step-size parameter used to process the reward
received after the nth selection of action a. As we have noted, the choice an
(a) = n1 results in the sample-average method, which is guaranteed to converge
to the true action values by the law of large numbers. But of course
convergence is not guaranteed for all choices of the sequence {an(a)}. A
well-known result in stochastic approximation theory gives us the conditions
required to assure convergence with probability &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:46.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:173.45pt right 401.05pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;an(a)
= oo and&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;^
an (a) &amp;lt; &lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A2\C6.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(2.7)&lt;/span&gt;&lt;/p&gt;

&lt;p class=153 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.25pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
9.5pt;mso-line-height-rule:exactly;tab-stops:center 184.0pt;background:transparent&#39;&gt;&lt;span
class=1595pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;=1&lt;/span&gt;&lt;span class=1595pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;=1&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The first condition is required to guarantee that
the steps are large enough to even&amp;shy;tually overcome any initial conditions or
random fluctuations. The second condition guarantees that eventually the steps
become small enough to assure convergence.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Note that both convergence conditions are met for the sample-average
case, an &lt;span class=1pt0&gt;(a)= \A1\F8,&lt;/span&gt; but not for the case of constant step-size
parameter, an (a) = a. In the latter case, the second condition is not met,
indicating that the estimates never completely con&amp;shy;verge but continue to vary
in response to the most recently received rewards. As we mentioned above, this
is actually desirable in a nonstationary environment, and problems that are
effectively nonstationary are the norm in reinforcement learn&amp;shy;ing. In addition,
sequences of step-size parameters that meet the conditions (2.7) often converge
very slowly or need considerable tuning in order to obtain a satisfac&amp;shy;tory
convergence rate. Although sequences of step-size parameters that meet these
convergence conditions are often used in theoretical work, they are seldom used
in applications and empirical research.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 398.9pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 2.4 If the step-size
parameters, an, are not constant, then the estimate &lt;span class=af1&gt;Qn&lt;/span&gt;
is a weighted average of previously received rewards with a weighting different
from that given by (2.6). What is the weighting on each prior reward for the
general case, analogous to (&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;span
class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;), in terms of the sequence of step-size parameters?&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 398.9pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 2.5 (programming) Design and
conduct an experiment to demonstrate the difficulties that sample-average
methods have for nonstationary problems. Use a modified version of the &lt;/span&gt;&lt;span
class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;-armed testbed in which all the q^(a) start out equal and then take
independent random walks (say by adding a normally distributed increment with
mean zero and standard deviation 0.01 to all the q^(a) on each step). Prepare
plots like Figure 2.2 for an action-value method using sample averages,
incrementally computed, and another action-value method using a constant
step-size parameter, &lt;span class=af1&gt;a&lt;/span&gt; = 0&lt;span class=af1&gt;.&lt;/span&gt;1. Use
&lt;span class=af1&gt;&amp;pound;&lt;/span&gt; = 0.1 and longer runs, say of 10,000 steps.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.8pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l44 level1 lfo7;
tab-stops:36.95pt;background:transparent&#39;&gt;&lt;a name=bookmark33&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;2.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Optimistic Initial Values&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;All the methods we have discussed so far are dependent to some
extent on the initial action-value estimates, Qi(a). In the language of
statistics, these methods are &lt;span class=af1&gt;biased &lt;/span&gt;by their initial
estimates. For the sample-average methods, the bias disappears once all actions
have been selected at least once, but for methods with constant &lt;span
class=af1&gt;a&lt;/span&gt;, the bias is permanent, though decreasing over time as given
by (2.6). In practice, this kind of bias is usually not a problem and can
sometimes be very helpful. The downside is that the initial estimates become,
in effect, a set of parameters that must be picked by the user, if only to set
them all to zero. The upside is that they provide an easy way to supply some
prior knowledge about what level of rewards can be expected.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Initial action values can also be used as a simple way of
encouraging exploration. Suppose that instead of setting the initial action
values to zero, as we did in the 10-armed testbed, we set them all to +5.
Recall that the q^(a) in this problem are selected from a normal distribution
with mean &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; and variance &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. An initial estimate
of +5 is thus wildly optimistic. But this optimism encourages action-value
methods to explore. Whichever actions are initially selected, the reward is
less than the starting estimates; the learner switches to other actions, being
\A1\B0disappointed\A1\B1 with the rewards it is receiving. The result is that all actions
are tried several times before the value estimates converge. The system does a
fair amount of exploration even if greedy actions are selected all the time.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Figure 2.3 shows the
performance on the 10-armed bandit testbed of a greedy method using Qi(a) = +5,
for all &lt;span class=af1&gt;a.&lt;/span&gt; For comparison, also shown is an &amp;pound;-greedy
method with &lt;span class=af1&gt;Q&lt;/span&gt;i(&lt;span class=af1&gt;a&lt;/span&gt;) = 0. Initially,
the optimistic method performs worse because it explores more, but eventually
it performs better because its exploration decreases with time. We call this
technique for encouraging exploration &lt;span class=af1&gt;optimistic initial val-&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection36&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:278.65pt;mso-element-frame-height:
126.5pt;mso-element-frame-hspace:44.65pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:152.45pt;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=431 height=169&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=169 style=&#39;padding-top:0cm;padding-right:
  44.65pt;padding-bottom:0cm;padding-left:44.65pt&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:278.65pt;
  mso-element-frame-height:126.5pt;mso-element-frame-hspace:44.65pt;mso-element-wrap:
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  column;mso-element-left:152.45pt;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_6&#34; o:spid=&#34;_x0000_i1118&#34;
   type=&#34;#_x0000_t75&#34; alt=&#34;image5&#34; style=&#39;width:279pt;height:126.75pt;
   visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image007.jpg&#34;
    o:title=&#34;image5&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:31.7pt;mso-element-frame-height:
29.7pt;mso-element-frame-hspace:44.65pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:115.95pt;mso-element-top:44.75pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=102 height=40&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=40 style=&#39;padding-top:0cm;padding-right:
  44.65pt;padding-bottom:0cm;padding-left:44.65pt&#39;&gt;
  &lt;p class=5b style=&#39;margin-left:12.0pt;line-height:9.5pt;mso-line-height-rule:
  exactly;background:transparent;mso-element:frame;mso-element-frame-width:
  31.7pt;mso-element-frame-height:29.7pt;mso-element-frame-hspace:44.65pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:115.95pt;mso-element-top:
  44.75pt&#39;&gt;&lt;span lang=EN-US&gt;%&lt;/span&gt;&lt;/p&gt;
  &lt;p class=6c style=&#39;margin-left:2.0pt;line-height:8.5pt;mso-line-height-rule:
  exactly;background:transparent;mso-element:frame;mso-element-frame-width:
  31.7pt;mso-element-frame-height:29.7pt;mso-element-frame-hspace:44.65pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:115.95pt;mso-element-top:
  44.75pt&#39;&gt;&lt;span lang=EN-US&gt;Optimal&lt;/span&gt;&lt;/p&gt;
  &lt;p class=6c style=&#39;margin-left:2.0pt;line-height:8.5pt;mso-line-height-rule:
  exactly;background:transparent;mso-element:frame;mso-element-frame-width:
  31.7pt;mso-element-frame-height:29.7pt;mso-element-frame-hspace:44.65pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:115.95pt;mso-element-top:
  44.75pt&#39;&gt;&lt;span lang=EN-US&gt;action&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:23.75pt;mso-element-frame-height:
9.1pt;mso-element-frame-hspace:44.65pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:287.35pt;mso-element-top:131.55pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=91 height=12&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=12 style=&#39;padding-top:0cm;padding-right:
  44.65pt;padding-bottom:0cm;padding-left:44.65pt&#39;&gt;
  &lt;p class=6c style=&#39;line-height:8.5pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:23.75pt;mso-element-frame-height:
  9.1pt;mso-element-frame-hspace:44.65pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:287.35pt;mso-element-top:131.55pt&#39;&gt;&lt;span lang=EN-US&gt;Steps&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:398.4pt;mso-element-frame-height:
23.5pt;mso-element-frame-hspace:44.65pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:76.35pt;mso-element-top:156.0pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=591 height=31&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=31 style=&#39;padding-top:0cm;padding-right:
  44.65pt;padding-bottom:0cm;padding-left:44.65pt&#39;&gt;
  &lt;p class=afffff8 style=&#39;background:transparent;mso-element:frame;mso-element-frame-width:
  398.4pt;mso-element-frame-height:23.5pt;mso-element-frame-hspace:44.65pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:76.35pt;mso-element-top:
  156.0pt&#39;&gt;&lt;span lang=EN-US&gt;Figure 2.3: The effect of optimistic initial
  action-value estimates on the &lt;/span&gt;&lt;span class=9pt1&gt;&lt;span lang=EN-US
  style=&#39;font-size:9.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-armed testbed. Both
  methods used a constant step-size parameter, a = 0.1.&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:24.15pt;margin-right:0cm;margin-bottom:6.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=af1&gt;&lt;span lang=EN-US&gt;ues&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. We regard it as
a simple trick that can be quite effective on stationary problems, but it is
far from being a generally useful approach to encouraging exploration. For
example, it is not well suited to nonstationary problems because its drive for
ex&amp;shy;ploration is inherently temporary. If the task changes, creating a renewed
need for exploration, this method cannot help. Indeed, any method that focuses
on the initial state in any special way is unlikely to help with the general
nonstationary case. The beginning of time occurs only once, and thus we should
not focus on it too much. This criticism applies as well to the sample-average
methods, which also treat the beginning of time as a special event, averaging
all subsequent rewards with equal weights. Nevertheless, all of these methods
are very simple, and one of them or some simple combination of them is often
adequate in practice. In the rest of this book we make frequent use of several
of these simple exploration techniques.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:36.35pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 398.9pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 2.6: &lt;span
class=af1&gt;Mysterious Spikes&lt;/span&gt; The results shown in Figure 2.3 should be
quite reliable because they are averages over &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2000&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; individual,
randomly chosen &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;-armed bandit tasks. Why, then, are there oscillations and spikes in
the early part of the curve for the optimistic method? In other words, what
might make this method perform particularly better or worse, on average, on
particular early steps?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l44 level1 lfo7;
tab-stops:36.7pt;background:transparent&#39;&gt;&lt;a name=bookmark34&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;2.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Upper-Confidence-Bound Action
Selection&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Exploration is needed because the estimates of
the action values are uncertain. The greedy actions are those that look best at
present, but some of the other actions may actually be better. e-greedy action
selection forces the non-greedy actions to be tried, but indiscriminately, with
no preference for those that are nearly greedy or particularly uncertain. It
would be better to select among the non-greedy actions according to their
potential for actually being optimal, taking into account both how close their
estimates are to being maximal and the uncertainties in those estimates.&lt;br
clear=all style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:22.9pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;One effective way of doing this is to
select actions as&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;span class=af1&gt;&lt;span lang=EN-US&gt;Qt&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;span
class=af1&gt;a&lt;/span&gt;) + &lt;span class=af1&gt;c&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;At == argmax&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f style=&#39;margin-bottom:13.75pt;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;where log t denotes the natural logarithm of t
(the number that &lt;span class=af1&gt;e ^&lt;/span&gt; 2.71828 would have to be raised to
in order to equal t), &lt;span class=af1&gt;Nt(a)&lt;/span&gt; denotes the number of times
that action &lt;span class=af1&gt;a&lt;/span&gt; has been selected prior to time &lt;span
class=af1&gt;t&lt;/span&gt; (the denominator in (&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;span
class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)), and the number &lt;span class=af1&gt;c &amp;gt;&lt;/span&gt; 0 controls the
degree of exploration. If &lt;span class=af1&gt;N&lt;sub&gt;t&lt;/sub&gt;(a)&lt;/span&gt; = 0, then &lt;span
class=af1&gt;a&lt;/span&gt; is considered to be a maximizing action.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The idea of this &lt;span class=af1&gt;upper confidence
bound&lt;/span&gt; (UCB) action selection is that the square- root term is a measure
of the uncertainty or variance in the estimate of a\A1\AFs value. The quantity being
max\A1\AFed over is thus a sort of upper bound on the possible true value of action &lt;span
class=af1&gt;a,&lt;/span&gt; with the &lt;span class=af1&gt;c&lt;/span&gt; parameter determining the
confidence level. Each time &lt;span class=af1&gt;a&lt;/span&gt; is selected the
uncertainty is presumably reduced; &lt;span class=af1&gt;Nt(a)&lt;/span&gt; is incremented
and, as it appears in the denominator of the uncertainty term, the term is
decreased. On the other hand, each time an action other than &lt;span class=af1&gt;a&lt;/span&gt;
is selected t is increased but &lt;span class=af1&gt;N&lt;sub&gt;t&lt;/sub&gt;(a) &lt;/span&gt;is not;
as t appears in the numerator the uncertainty estimate is increased. The use of
the natural logarithm means that the increase gets smaller over time, but is
unbounded; all actions will eventually be selected, but as time goes by it will
be a longer wait, and thus a lower selection frequency, for actions with a
lower value estimate or that have already been selected more times.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:21.3pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Results with UCB on the
10-armed testbed are shown in Figure 2.4. UCB will often perform well, as shown
here, but is more difficult than &amp;pound;-greedy to extend beyond bandits to the more
general reinforcement learning settings considered in the rest of this book.
One difficulty is in dealing with nonstationary problems; something more
complex than the methods presented in Section 2.4 would be needed. Another
difficulty is dealing with large state spaces, particularly function
approximation as&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:131.5pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=175 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=175 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:131.5pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_7&#34; o:spid=&#34;_x0000_i1117&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image6&#34;
   style=&#39;width:317.25pt;height:132pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image008.jpg&#34;
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  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=6c style=&#39;line-height:8.5pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-height:131.5pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US&gt;Steps&lt;/span&gt;&lt;/p&gt;
  &lt;p class=afffff8 style=&#39;background:transparent;mso-element:frame;mso-element-frame-height:
  131.5pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span lang=EN-US&gt;Figure 2.4: Average performance of UCB action
  selection on the 10-armed testbed. As shown, UCB generally performs better
  than &amp;pound;-greedy action selection, except in the first &lt;span class=af9&gt;k &lt;/span&gt;steps,
  when it selects randomly among the as-yet-untried actions.&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Courier New&#34;;
mso-fareast-font-family:&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;
mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
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&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.55pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;developed in Part II of this book. In these more advanced settings
there is currently no known practical way of utilizing the idea of UCB action
selection.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l44 level1 lfo7;
tab-stops:37.95pt;background:transparent&#39;&gt;&lt;a name=bookmark35&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;2.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Gradient Bandit Algorithms&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;So far in this chapter we have considered methods that estimate
action values and use those estimates to select actions. This is often a good
approach, but it is not the only one possible. In this section we consider
learning a numerical &lt;span class=af1&gt;preference&lt;/span&gt; Hi (a) for each action
a. The larger the preference, the more often that action is taken, but the
preference has no interpretation in terms of reward. Only the relative
preference of one action over another is important; if we add &lt;/span&gt;&lt;span
class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1000&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; to all the preferences there is no effect on the action
probabilities, which are determined according to a soft-max distribution (i.e.,
Gibbs or Boltzmann distribution) as follows:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.2pt;
margin-left:109.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;eHt(a)&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.75pt;
margin-left:30.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
center 137.3pt right 400.85pt;background:transparent&#39;&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-begin&#39;&gt;&lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;TOC \o &amp;quot;1-5&amp;quot; \h \z &lt;span
style=&#39;mso-element:field-separator&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;span lang=EN-US&gt;&lt;sup&gt;Pr{Ai&lt;/sup&gt;
= &lt;sup&gt;a} =&lt;/sup&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sub&gt;e&lt;/sub&gt;H&lt;sub&gt;&amp;pound;&lt;/sub&gt;(b)
= &lt;sup&gt;ni(a)&lt;/sup&gt;,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(2&lt;/sup&gt;.&lt;sup&gt;9)&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;where here we have also introduced a useful new
notation ni(a) for the probability of taking action a at time t. Initially all
preferences are the same (e.g., H1(a) = 0, Va) so that all actions have an
equal probability of being selected.&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 400.85pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 2.7 Show that
in the case of two actions, the soft-max distribution is the same as that given
by the logistic, or sigmoid, function often used in statistics and artificial
neural networks.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:7.55pt;
margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;There is a natural learning
algorithm for this setting based on the idea of stochastic gradient ascent. On
each step, after selecting the action Ai and receiving the reward Ri, the
preferences are updated by:&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.7pt;
margin-left:30.0pt;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:
373.9pt;background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;H&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;i+&lt;/span&gt;&lt;span class=9pt&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;(A&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;i&lt;sup&gt;)&lt;/sup&gt; = &lt;sup&gt;H&lt;/sup&gt;i&lt;sup&gt;(A&lt;/sup&gt;i&lt;sup&gt;)&lt;/sup&gt;
+ &lt;sup&gt;(a&lt;/sup&gt;(&lt;sup&gt;R&lt;/sup&gt;i &lt;sup&gt;\A1\AA&lt;/sup&gt; ^&lt;sup&gt;R&lt;/sup&gt;i&lt;/span&gt;&lt;span
class=9pt&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;)(&lt;sup&gt;1&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt; \A1\AA n&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;i&lt;sup&gt;(A&lt;/sup&gt;i&lt;sup&gt;)&lt;/sup&gt;)&lt;sub&gt;;&lt;/sub&gt;
&lt;sup&gt;and&lt;/sup&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;(&lt;/span&gt;&lt;span class=MingLiU7&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;\A1\A3\B9\A4\A1\A3\A3\A9&lt;/span&gt;&lt;/span&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-end&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.25pt;
margin-left:30.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:269.5pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Hi+&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(a) = Hi (a)
\A1\AA a(Ri \A1\AA ^i)ni(a),&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Va
= Ai,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where a &amp;gt; 0 is a step-size parameter, and R^ E R is the average
of all the rewards up through and including time t, which can be computed
incrementally as described in Section 2.3 (or Section 2.4 if the problem is
nonstationary). The Ri term serves as a baseline with which the reward is
compared. If the reward is higher than the baseline, then the probability of
taking Ai in the future is increased, and if the reward is below baseline, then
probability is decreased. The non-selected actions move in the opposite
direction.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Figure 2.5 shows results with the gradient bandit
algorithm on a variant of the &lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-armed testbed in
which the true expected rewards were selected according to a normal
distribution with a mean of +4 instead of zero (and with unit variance as
before). This shifting up of all the rewards has absolutely no effect on the
gradient bandit algorithm because of the reward baseline term, which
instantaneously adapts to the new level. But if the baseline were omitted (that
is, if Ri was taken to be constant zero in (&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;span
class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)), then performance would be significantly degraded, as shown in
the figure.&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      style=&#39;font-size:6.0pt;mso-ansi-language:ZH-TW&#39;&gt;%&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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     &lt;tr style=&#39;mso-yfti-irow:1;height:24.0pt;mso-height-rule:exactly&#39;&gt;
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      solid windowtext 1.0pt;mso-border-right-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:24.0pt;mso-height-rule:
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      &lt;p class=afffff6 style=&#39;margin-left:8.0pt;text-indent:0cm;line-height:
      6.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=CenturySchoolbook1&gt;&lt;span lang=ZH-TW style=&#39;font-size:6.0pt;
      letter-spacing:0pt&#39;&gt;80&lt;/span&gt;&lt;/span&gt;&lt;span class=6pt&gt;&lt;span lang=ZH-TW
      style=&#39;font-size:6.0pt;mso-ansi-language:ZH-TW&#39;&gt;%&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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     &lt;tr style=&#39;mso-yfti-irow:2;height:18.5pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=53 valign=top style=&#39;width:39.85pt;background:white;padding:
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      &lt;p class=afffff6 style=&#39;margin-left:14.0pt;text-indent:0cm;line-height:
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      class=af4&gt;&lt;span lang=ZH-TW style=&#39;font-size:9.0pt;letter-spacing:0pt;
      mso-ansi-language:ZH-TW&#39;&gt;%&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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      solid windowtext 1.0pt;mso-border-right-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:18.5pt;mso-height-rule:
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      &lt;p class=afffff6 style=&#39;margin-left:8.0pt;text-indent:0cm;line-height:
      6.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=CenturySchoolbook1&gt;&lt;span lang=ZH-TW style=&#39;font-size:6.0pt;
      letter-spacing:0pt&#39;&gt;60&lt;/span&gt;&lt;/span&gt;&lt;span class=6pt&gt;&lt;span lang=ZH-TW
      style=&#39;font-size:6.0pt;mso-ansi-language:ZH-TW&#39;&gt;%&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
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     &lt;tr style=&#39;mso-yfti-irow:3;height:12.95pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=53 valign=top style=&#39;width:39.85pt;background:white;padding:
      0cm .5pt 0cm .5pt;height:12.95pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;Optimal&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
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      solid windowtext 1.0pt;mso-border-right-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:12.95pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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     &lt;tr style=&#39;mso-yfti-irow:4;height:18.7pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=53 valign=top style=&#39;width:39.85pt;background:white;padding:
      0cm .5pt 0cm .5pt;height:18.7pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=af4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;action&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=29 valign=top style=&#39;width:21.85pt;border:none;border-right:
      solid windowtext 1.0pt;mso-border-right-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:18.7pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:8.0pt;text-indent:0cm;line-height:
      6.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=CenturySchoolbook1&gt;&lt;span lang=ZH-TW style=&#39;font-size:6.0pt;
      letter-spacing:0pt&#39;&gt;40&lt;/span&gt;&lt;/span&gt;&lt;span class=6pt&gt;&lt;span lang=ZH-TW
      style=&#39;font-size:6.0pt;mso-ansi-language:ZH-TW&#39;&gt;%&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
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     &lt;tr style=&#39;mso-yfti-irow:5;height:24.95pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=53 valign=top style=&#39;width:39.85pt;background:white;padding:
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      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      solid windowtext 1.0pt;mso-border-right-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:24.95pt;mso-height-rule:
      exactly&#39;&gt;
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      class=CenturySchoolbook1&gt;&lt;span lang=ZH-TW style=&#39;font-size:6.0pt;
      letter-spacing:0pt&#39;&gt;20&lt;/span&gt;&lt;/span&gt;&lt;span class=6pt&gt;&lt;span lang=ZH-TW
      style=&#39;font-size:6.0pt;mso-ansi-language:ZH-TW&#39;&gt;%&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
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      exactly&#39;&gt;
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      0cm .5pt 0cm .5pt;height:16.55pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      solid windowtext 1.0pt;mso-border-right-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:16.55pt;mso-height-rule:
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      text-indent:0cm;line-height:6.0pt;mso-line-height-rule:exactly;
      background:transparent&#39;&gt;&lt;span class=CenturySchoolbook1&gt;&lt;span lang=ZH-TW
      style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
      class=6pt&gt;&lt;span lang=ZH-TW style=&#39;font-size:6.0pt;mso-ansi-language:ZH-TW&#39;&gt;%&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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    &lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=af7&gt;&lt;span lang=EN-US&gt;The Bandit Gradient Algorithm as
Stochastic Gradient Ascent&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;One can gain a deeper insight into the gradient
bandit algorithm by under&amp;shy;standing it as a stochastic approximation to gradient
ascent. In exact &lt;span class=af1&gt;gradient ascent,&lt;/span&gt; each preference &lt;span
class=af1&gt;Ht(a)&lt;/span&gt; would be incrementing proportional to the in&amp;shy;crement\A1\AFs
effect on performance:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:25.7pt;mso-line-height-rule:exactly;
tab-stops:right 367.35pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Ht+i(a) ^
Ht(a&lt;/span&gt;&lt;span class=MingLiU8&gt;&lt;span lang=EN-US style=&#39;font-size:11.5pt;
mso-ansi-language:EN-US&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiU8&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span
class=afa&gt;&lt;span lang=EN-US&gt;adHR,&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(2.11)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:25.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;where the measure of performance here is the
expected reward:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=center style=&#39;margin-left:28.0pt;text-align:center;
text-indent:0cm;line-height:12.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;E[Rt] == ^nt(b)q*(b), &lt;span class=af1&gt;b&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;and the measure of the increment\A1\AFs effect is the &lt;span class=af1&gt;partial
derivative&lt;/span&gt; of this per&amp;shy;formance measure with respect to the preference.
Of course, it is not possible to implement gradient ascent exactly in our case because
by assumption we do not know the q^(b), but in fact the updates of our
algorithm (&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) are equal to (&lt;/span&gt;&lt;span class=9pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;span
class=9pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) in expected value, making the algorithm an instance of &lt;span
class=af1&gt;stochastic gra&amp;shy;dient ascent.&lt;/span&gt; The calculations showing this
require only beginning calculus, but take several steps. First we take a closer
look at the exact performance gradient:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:89.2pt 120.65pt 148.25pt;background:transparent&#39;&gt;&lt;span class=af1&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;d&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt; E[R&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;sup&gt;]&lt;/sup&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;span
class=af1&gt;9&lt;/span&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;^&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;span
class=af1&gt;(b) (b)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:32.9pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=af1&gt;&lt;span lang=EN-US&gt;mar&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;span class=1pt0&gt;dHt^i &lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiU8&gt;&lt;span
lang=EN-US style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;?&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiU8&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C7\C9\E1t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=165 style=&#39;margin-left:69.0pt;background:transparent&#39;&gt;&lt;a
name=bookmark36&gt;&lt;span class=16Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;
font-style:normal&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;span style=&#39;mso-bookmark:bookmark36&#39;&gt;&lt;span
class=16CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-style:normal&#39;&gt;?&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark36&#39;&gt;&lt;span class=160&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW;font-style:normal&#39;&gt;\B8\B1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark36&#39;&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\BF\97&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=170 style=&#39;margin-left:69.0pt;background:transparent&#39;&gt;&lt;a
name=bookmark37&gt;&lt;span class=171pt&gt;&lt;span lang=EN-US style=&#39;mso-ansi-language:
EN-US&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;span style=&#39;mso-bookmark:bookmark37&#39;&gt;&lt;span
class=17CenturySchoolbook&gt;&lt;span lang=ZH-TW style=&#39;font-size:22.0pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark37&#39;&gt;&lt;span class=17MingLiU&gt;&lt;span lang=ZH-TW
style=&#39;font-size:22.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark37&#39;&gt;&lt;span
class=17MingLiU&gt;&lt;span style=&#39;font-size:22.0pt&#39;&gt;\B8\B1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark37&#39;&gt;&lt;span class=171pt&gt;&lt;span lang=EN-US
style=&#39;mso-ansi-language:EN-US&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:
bookmark37&#39;&gt;&lt;span class=17MingLiU&gt;&lt;span style=&#39;font-size:22.0pt&#39;&gt;\BD\D0&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark37&#39;&gt;&lt;span class=17CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:22.0pt;mso-ansi-language:EN-US&#39;&gt;m&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark37&#39;&gt;&lt;span class=171pt&gt;&lt;span lang=EN-US
style=&#39;mso-ansi-language:EN-US&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span lang=ZH-TW&gt;&lt;br
clear=all style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where &lt;span class=afb&gt;Xt&lt;/span&gt; can be any scalar that does not
depend on &lt;span class=afb&gt;b.&lt;/span&gt; We can include it here because the gradient
sums to zero over all the actions, E&lt;span class=afb&gt;b&lt;/span&gt; &lt;/span&gt;&lt;span
class=MingLiU9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\D2淺&lt;/span&gt;&lt;/span&gt;&lt;span class=3pt0&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=3pt1&gt;&lt;span
lang=EN-US&gt;=0.&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; As &lt;span class=afb&gt;Ht&lt;/span&gt;(a)
is changed, some actions\A1\AF probabilities go up and some down, but the sum of the
changes must be zero because the sum of the probabilities must remain one.&lt;/span&gt;&lt;/p&gt;

&lt;p class=1a style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:16.05pt;
margin-left:71.0pt;line-height:9.5pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark38&gt;&lt;span lang=EN-US&gt;^ &lt;sup&gt;n&lt;/sup&gt;t&lt;sup&gt;(b)&lt;/sup&gt; (q*&lt;sup&gt;(b) \A1\AA X&lt;/sup&gt;t)
IHH&lt;sup&gt;/n&lt;/sup&gt;t&lt;sup&gt;(b)&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The equation is now in the form of an expectation, summing over all
possible values &lt;span class=afb&gt;b&lt;/span&gt; of the random variable &lt;span
class=afb&gt;At&lt;/span&gt;, then multiplying by the probability of taking those
values. Thus:&lt;/span&gt;&lt;/p&gt;

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    &lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:19.45pt;
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    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;(&lt;sup&gt;q&lt;/sup&gt;*&lt;sup&gt;(At) \A1\AA Xt&lt;/sup&gt;) &lt;span class=afb&gt;dH&lt;sub&gt;t&lt;/sub&gt;(a)&lt;/span&gt;
&lt;sup&gt;/nt(At)&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.55pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;(&lt;sup&gt;R&lt;/sup&gt;t - &lt;sup&gt;R&lt;/sup&gt;t)&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;\E8F\CB\FD\A3\A9&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.9pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:14.4pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where here we have chosen &lt;span class=afb&gt;Xt&lt;/span&gt; = &lt;span
class=afb&gt;Rt&lt;/span&gt; and substituted &lt;span class=afb&gt;Rt&lt;/span&gt; for q^(At), which
is permitted because E[Rt|At] = q^(At) and because the &lt;span class=afb&gt;Rt&lt;/span&gt;
(given At) is uncorrelated with anything else. Shortly we will establish that &lt;/span&gt;&lt;span
class=MingLiU9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C4\FA\C9\CF&lt;/span&gt;&lt;/span&gt;&lt;span class=afc&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;))&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= &lt;span
class=afb&gt;nt(b) (1a=b&lt;/span&gt; \A1\AA &lt;span class=afb&gt;nt(a),&lt;/span&gt; where 1a=b is
defined to be 1 if &lt;span class=afb&gt;a&lt;/span&gt; = b, else 0. Assuming that for now,
we have&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.95pt;
margin-left:71.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=E[(Rt \A1\AA ^Rt)nt(At&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;)(1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;a=A&lt;sub&gt;&amp;pound;&lt;/sub&gt; \A1\AA 7Tt(a))/nt(At)]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.65pt;
margin-left:71.0pt;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=&lt;sup&gt;E&lt;/sup&gt; [(&lt;sup&gt;R&lt;/sup&gt;t &lt;sup&gt;\A1\AA
&lt;span class=afb&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span class=afb&gt;t)(ia=A&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
class=afb&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;\A1\AA&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A2\C8&lt;/span&gt;&lt;span lang=EN-US&gt;)]&amp;#8226;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Recall that our plan has been to write the performance gradient as
an expecta&amp;shy;tion of something that we can sample on each step, as we have just
done, and then update on each step proportional to the sample. Substituting a
sample of the expectation above for the performance gradient in &lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;(&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=ZH-TW style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;.&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=ZH-TW style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;) &lt;/span&gt;&lt;span lang=EN-US&gt;yields:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.65pt;
margin-left:28.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Ht+i(a) = &lt;span class=afb&gt;Ht(a)&lt;/span&gt;
+ &lt;span class=afb&gt;a(Rt \A1\AA&lt;/span&gt; Rt) (1a=At \A1\AA ^t(a)), Va,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;which you will recognize as being equivalent to our original
algorithm (&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.2pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Thus it remains only to show that &lt;/span&gt;&lt;span
class=MingLiU9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\D2\E6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;span
class=afc&gt;0)&lt;/span&gt; = &lt;span class=afb&gt;nt(b)( 1a=b&lt;/span&gt; \A1\AA nt(a)), as we
assumed. Recall the standard quotient rule for derivatives:&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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&lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
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&lt;/div&gt;

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&lt;div class=WordSection39&gt;

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&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
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&lt;div class=WordSection50&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:0cm;
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transparent&#39;&gt;&lt;span lang=EN-US&gt;We have just shown that the expected update of
the gradient bandit algo&amp;shy;rithm is equal to the gradient of expected reward, and
thus that the algorithm is an instance of stochastic gradient ascent. This
assures us that the algorithm has robust convergence properties.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:42.35pt;
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lang=EN-US&gt;Note that we did not require any properties of the reward baseline
other than that it does not depend on the selected action. For example, we
could have set it to zero, or to &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1000&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, and the algorithm
would still be an instance of stochastic gradient ascent. The choice of the
baseline does not affect the expected update of the algorithm, but it does
affect the variance of the update and thus the rate of convergence (as shown,
e.g., in Figure 2.5). Choosing it as the average of the rewards may not be the
very best, but it is simple and works well in practice.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Associative
Search (Contextual Bandits)&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;So far in this chapter we have considered only nonassociative tasks,
in which there is no need to associate different actions with different
situations. In these tasks the learner either tries to find a single best
action when the task is stationary, or tries to track the best action as it
changes over time when the task is nonstationary. However, in a general
reinforcement learning task there is more than one situation, and the goal is
to learn a policy: a mapping from situations to the actions that are best in
those situations. To set the stage for the full problem, we briefly discuss the
&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection51&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;simplest way in which nonassociative tasks extend to the associative
setting.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;As an example, suppose there
are several different k-armed bandit tasks, and that on each step you confront
one of these chosen at random. Thus, the bandit task changes randomly from step
to step. This would appear to you as a single, nonstationary k-armed bandit
task whose true action values change randomly from step to step. You could try
using one of the methods described in this chapter that can handle
nonstationarity, but unless the true action values change slowly, these methods
will not work very well. Now suppose, however, that when a bandit task is
selected for you, you are given some distinctive clue about its identity (but
not its action values). Maybe you are facing an actual slot machine that
changes the color of its display as it changes its action values. Now you can
learn a policy associating each task, signaled by the color you see, with the
best action to take when facing that task\A1\AAfor instance, if red, select arm 1;
if green, select arm 2. With the right policy you can usually do much better
than you could in the absence of any information distinguishing one bandit task
from another.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;This is an example of an &lt;span class=afb&gt;associative search&lt;/span&gt;
task, so called because it involves both trial-and-error learning in the form
of &lt;span class=afb&gt;search&lt;/span&gt; for the best actions and &lt;span class=afb&gt;association&lt;/span&gt;
of these actions with the situations in which they are best&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;.&lt;a style=&#39;mso-footnote-id:
ftn3&#39; href=&#34;#_ftn3&#34; name=&#34;_ftnref3&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:
footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=9pt2&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[3]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; Associative search tasks are intermediate between the k-armed
bandit problem and the full reinforcement learning problem. They are like the
full reinforcement learning problem in that they involve learning a policy, but
like our version of the k-armed bandit problem in that each action affects only
the immediate reward. If actions are allowed to affect the &lt;span class=afb&gt;next
situation&lt;/span&gt; as well as the reward, then we have the full reinforcement
learning problem. We present this problem in the next chapter and consider its
ramifications throughout the rest of the book.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l5 level1 lfo9;
tab-stops:45.1pt;background:transparent&#39;&gt;&lt;a name=bookmark40&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;2.10&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Summary&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;We have presented in this chapter
several simple ways of balancing exploration and exploitation. The e-greedy
methods choose randomly a small fraction of the time, whereas UCB methods
choose deterministically but achieve exploration by subtly favoring at each
step the actions that have so far received fewer samples. Gradient bandit
algorithms estimate not action values, but action preferences, and favor the
more preferred actions in a graded, probabilistic manner using a soft-max
distribu&amp;shy;tion. The simple expedient of initializing estimates optimistically
causes even greedy methods to explore significantly.&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;It is natural to ask which of these methods is best.
Although this is a difficult question to answer in general, we can certainly
run them all on the &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-armed testbed that we have used
throughout this chapter and compare their performances. A complication is that
they all have a parameter; to get a meaningful comparison we will have to
consider their performance as a function of their parameter. Our graphs so far have
shown the course of learning over time for each algorithm and parameter&lt;br
clear=all style=&#39;page-break-before:always&#39;&gt;
setting, but it would be too visually confusing to show such a &lt;span class=afb&gt;learning
curve&lt;/span&gt; for each algorithm and parameter value. Instead we summarize a
complete learning curve by its average value over the &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1000&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; steps;
this value is proportional to the area under the learning curves we have shown
up to now. Figure 2.6 shows this measure for the various bandit algorithms from
this chapter, each as a function of its own parameter shown on a single scale
on the x-axis. Note that the parameter values are varied by factors of two and
presented on a log scale. Note also the characteristic inverted- U shapes of
each algorithm\A1\AFs performance; all the algorithms perform best at an
intermediate value of their parameter, neither too large nor too small. In
assessing a method, we should attend not just to how well it does at its best
parameter setting, but also to how sensitive it is to its parameter value. All
of these algorithms are fairly insensitive, performing well over a range of
parameter values varying by about an order of magnitude. Overall, on this
problem, UCB seems to perform best.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Despite their simplicity, in our opinion the
methods presented in this chapter can fairly be considered the state of the
art. There are more sophisticated methods, but their complexity and assumptions
make them impractical for the full reinforcement learning problem that is our
real focus. Starting in Chapter 5 we present learning methods for solving the
full reinforcement learning problem that use in part the simple methods
explored in this chapter.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Although the simple methods explored in this
chapter may be the best we can do at present, they are far from a fully
satisfactory solution to the problem of balancing exploration and exploitation.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The classical solution to balancing exploration and exploitation in
k-armed bandit problems is to compute special functions called &lt;span class=afb&gt;Gittins
indices&lt;/span&gt;. These provide an optimal solution to a certain kind of bandit
problem more general than that con&amp;shy;sidered here but that assumes the prior
distribution of possible problems is known. Unfortunately, neither the theory
nor the computational tractability of this method appear to generalize to the
full reinforcement learning problem that we consider in the rest of the book.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afb&gt;&lt;span lang=EN-US&gt;Bayesian&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; methods
assume a known initial distribution over the action values and then updates the
distribution exactly after each step (assuming that the true action values are
stationary). In general, the update computations can be very complex, but for
certain special distributions (called &lt;span class=afb&gt;conjugate priors&lt;/span&gt;)
they are easy. One possibility is to then select actions at each step according
to their posterior proba&amp;shy;bility of being the best action. This method,
sometimes called &lt;span class=afb&gt;posterior sampling &lt;/span&gt;or &lt;span class=afb&gt;Thompson
sampling&lt;/span&gt;, often performs similarly to the best of the distribution-free
methods we have presented in this chapter.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In the Bayesian setting it is even conceivable to compute the &lt;span
class=afb&gt;optimal&lt;/span&gt; balance be&amp;shy;tween exploration and exploitation.
Clearly, for any possible action we can compute the probability of each
possible immediate reward and the resultant posterior distri&amp;shy;butions over
action values. This evolving distribution becomes the &lt;span class=afb&gt;information
state &lt;/span&gt;of the problem. Given a horizon, say of 1000 steps, one can
consider all possible actions, all possible resulting rewards, all possible
next actions, all next rewards, and so on for all 1000 steps. Given the
assumptions, the rewards and probabilities of each possible chain of events can
be determined, and one need only pick the best. But the tree of possibilities
grows extremely rapidly; even if there are only two ac&amp;shy;tions and two rewards,
the tree will have 2&lt;/span&gt;&lt;span class=9pt2&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2000&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; leaves. It is
generally not feasible to perform this immense computation exactly, but perhaps
it could be approximated efficiently. This approach would effectively turn the
bandit problem into an instance of the full reinforcement learning problem; it
is beyond the current state of the art, but someday it may be possible to use
reinforcement learning methods such as those presented in Part II of this book
to approximate this optimal solution.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 398.9pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 2.8 (programming) Make a
figure analogous to Figure 2.6 for the non-stationary case outlined in Exercise
2.5. Include the constant-step-size e-greedy algorithm with &lt;span class=afb&gt;a&lt;/span&gt;
= 0.1. Use runs of 200,000 steps and, as a performance measure for each
algorithm and parameter setting, use the average reward over the last &lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;100,000 &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;steps.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:36.0pt;text-indent:-36.0pt;line-height:13.0pt;mso-line-height-rule:
exactly;mso-pagination:lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark41&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Bibliographical and Historical
Remarks&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.15pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l61 level1 lfo10;
tab-stops:35.5pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;2.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Bandit problems have been
studied in statistics, engineering, and psychology. In statistics, bandit
problems fall under the heading \A1\B0sequential design of ex&amp;shy;periments,\A1\B1 introduced
by Thompson (1933, 1934) and Robbins (1952), and studied by Bellman (1956).
Berry and Fristedt (1985) provide an extensive treatment of bandit problems
from the perspective of statistics. Narendra and Thathachar (1989) treat bandit
problems from the engineering perspec&amp;shy;tive, providing a good discussion of the
various theoretical traditions that have focused on them. In psychology, bandit
problems have played roles in statistical learning theory (e.g., Bush and
Mosteller, 1955; Estes, 1950).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-right:1.0pt;text-align:right;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The term &lt;span class=afb&gt;greedy&lt;/span&gt; is often used in the
heuristic search literature (e.g., Pearl,&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection52&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;1984). The conflict between exploration and exploitation is known in
control engineering as the conflict between identification (or estimation) and
control (e.g., Witten, 1976). Feldbaum (1965) called it the &lt;span class=afb&gt;dual
control&lt;/span&gt; problem, referring to the need to solve the two problems of
identification and con&amp;shy;trol simultaneously when trying to control a system
under uncertainty. In discussing aspects of genetic algorithms, Holland (1975)
emphasized the im&amp;shy;portance of this conflict, referring to it as the conflict
between the need to exploit and the need for new information.&lt;/span&gt;&lt;/p&gt;

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  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=153 style=&#39;margin-bottom:67.2pt;line-height:9.0pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=150ptExact0&gt;&lt;span lang=ZH-TW
    style=&#39;letter-spacing:-.5pt;mso-ansi-language:ZH-TW&#39;&gt;2.2&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-bottom:28.45pt;text-indent:0cm;line-height:
    9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;2.3-4&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-bottom:13.2pt;text-indent:0cm;line-height:
    9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=Exact&gt;&lt;span lang=ZH-TW style=&#39;font-size:9.0pt;letter-spacing:0pt;
    mso-ansi-language:ZH-TW&#39;&gt;2.5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=153 style=&#39;margin-bottom:55.45pt;line-height:9.0pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=150ptExact0&gt;&lt;span lang=EN-US
    style=&#39;letter-spacing:-.5pt&#39;&gt;2.6&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-bottom:112.45pt;text-indent:0cm;line-height:
    9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;2.7&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=153 style=&#39;line-height:9.0pt;mso-line-height-rule:exactly;
    background:transparent&#39;&gt;&lt;span class=150ptExact0&gt;&lt;span lang=EN-US
    style=&#39;letter-spacing:-.5pt&#39;&gt;2.8&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Action-value methods for our k-armed bandit problem
were first proposed by Thathachar and Sastry (1985). These are often called &lt;span
class=afb&gt;estimator algorithms &lt;/span&gt;in the learning automata literature. The
term &lt;span class=afb&gt;action value&lt;/span&gt; is due to Watkins (1989). The first to
use &amp;pound;-greedy methods may also have been Watkins (1989, p. 187), but the idea is
so simple that some earlier use seems likely.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;This material falls under the general heading of stochastic
iterative algo&amp;shy;rithms, which is well covered by Bertsekas and Tsitsiklis (1996).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:10.25pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Optimistic initialization was used in
reinforcement learning by Sutton (1996).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Early work on using estimates of the upper confidence bound to
select actions was done by Lai and Robbins (1985), Kaelbling (1993b), and
Agrawal (1995). The UCB algorithm we present here is called UCB1 in the
literature and was first developed by Auer, Cesa-Bianchi and Fischer (2002).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:2.8pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Gradient bandit algorithms are a special case of the gradient-based
rein&amp;shy;forcement learning algorithms introduced by Williams (1992), and that later
developed into the actor-critic and policy-gradient algorithms that we treat
later in this book. Our development here was influenced by that by Balara- man
Ravindran. Further discussion of the choice of baseline is provided there and
by Greensmith, Bartlett, and Baxter (2001, 2004) and Dick (2015).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.2pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The term &lt;span class=afb&gt;softmax&lt;/span&gt; for the action selection
rule (2.9) is due to Bridle (1990). This rule appears to have been first
proposed by Luce (1959).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The term &lt;span class=afb&gt;associative
search&lt;/span&gt; and the corresponding problem were introduced by Barto, Sutton,
and Brouwer (1981). The term &lt;span class=afb&gt;associative reinforcement learning&lt;/span&gt;
has also been used for associative search (Barto and Anandan, 1985), but we
prefer to reserve that term as a synonym for the full reinforcement learning
problem (as in Sutton, 1984). (And, as we noted, the modern litera&amp;shy;ture also
uses the term \A1\B0contextual bandits\A1\B1 for this problem.) We note that Thorndike\A1\AFs
Law of Effect (quoted in Chapter 1) describes associative search by referring
to the formation of associative links between situations (states) and actions.
According to the terminology of operant, or instrumental, con&amp;shy;ditioning (e.g.,
Skinner, 1938), a discriminative stimulus is a stimulus that signals the
presence of a particular reinforcement contingency. In our terms, different
discriminative stimuli correspond to different states.&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;2.9&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;The Gittins index approach is due to Gittins and Jones
(1974). Duff (1995) showed how it is possible to learn Gittins indices for
bandit problems through reinforcement learning. Bellman (1956) was the first to
show how dynamic programming could be used to compute the optimal balance
between explo&amp;shy;ration and exploitation within a Bayesian formulation of the
problem. The survey by Kumar (1985) provides a good discussion of Bayesian and
non- Bayesian approaches to these problems. The term &lt;span class=afb&gt;information
state&lt;/span&gt; comes from the literature on partially observable MDPs; see, e.g.,
Lovejoy (1991).&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection53&gt;

&lt;p class=4f style=&#39;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
right 243.1pt 254.4pt 345.35pt 399.35pt;background:transparent&#39;&gt;&lt;span class=41&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW;font-style:normal&#39;&gt;48&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=44&gt;&lt;span lang=EN-US&gt;CHAPTER&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;2.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;MULTI-ARMED&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;BANDITS&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;i&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/i&gt;&lt;/p&gt;

&lt;div class=WordSection54&gt;

&lt;p class=8a style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:22.7pt;
margin-left:1.0pt;line-height:19.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Chapter 3&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f8 align=left style=&#39;margin-top:0cm;margin-right:115.0pt;margin-bottom:
40.25pt;margin-left:1.0pt;text-align:left;line-height:30.0pt;mso-line-height-rule:
exactly;mso-pagination:lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark42&gt;&lt;span class=25&gt;&lt;span lang=EN-US&gt;Finite Markov Decision
Processes&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In this chapter we introduce the problem that we
try to solve in the rest of the book. This problem could be considered to define
the field of reinforcement learning: any method that is suited to solving this
problem we consider to be a reinforcement learning method.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Our objective in this chapter is to describe the reinforcement
learning problem in a broad sense. We try to convey the wide range of possible
applications that can be framed as reinforcement learning tasks. We also
describe mathematically idealized forms of the reinforcement learning problem
for which precise theoretical statements can be made. We introduce key elements
of the problem\A1\AFs mathematical structure, such as value functions and Bellman
equations. As in all of artificial intelligence, there is a tension between
breadth of applicability and mathematical tractability. In this chapter we
introduce this tension and discuss some of the trade-offs and challenges that
it implies.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l98 level1 lfo11;
tab-stops:37.7pt;background:transparent&#39;&gt;&lt;a name=bookmark43&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;3.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;The
Agent-Environment Interface&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The reinforcement learning problem is meant to be
a straightforward framing of the problem of learning from interaction to
achieve a goal. The learner and decision&amp;shy;maker is called the &lt;span class=afb&gt;agent&lt;/span&gt;.
The thing it interacts with, comprising everything outside the agent, is called
the &lt;span class=afb&gt;environment&lt;/span&gt;. These interact continually, the agent
selecting actions and the environment responding to those actions and
presenting new situa&amp;shy;tions to the agent&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;.&lt;a style=&#39;mso-footnote-id:ftn4&#39;
href=&#34;#_ftn4&#34; name=&#34;_ftnref4&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:
footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=9pt2&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[4]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; The environment also gives rise to rewards, special numerical
values that the agent tries to maximize over time. A complete specification of
an environment, including how rewards are determined, defines a &lt;span
class=afb&gt;task&lt;/span&gt; , one instance of the reinforcement learning problem.&lt;/span&gt;&lt;/p&gt;

&lt;div align=center&gt;

&lt;table class=MsoNormalTable border=0 cellspacing=0 cellpadding=0
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 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:2;height:23.5pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=31 valign=top style=&#39;width:23.5pt;background:white;padding:0cm .5pt 0cm .5pt;
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  &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:8.5pt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=59 valign=top style=&#39;width:43.9pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.95pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:252.7pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=28 valign=top style=&#39;width:21.1pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.95pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:252.7pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=69 valign=top style=&#39;width:52.1pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.95pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:252.7pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=37 valign=top style=&#39;width:27.85pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.95pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:252.7pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:4;height:9.35pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=31 valign=top style=&#39;width:23.5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:9.35pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:252.7pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=13 valign=top style=&#39;width:10.1pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:9.35pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:252.7pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=70 valign=top style=&#39;width:52.55pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:9.35pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=right style=&#39;margin-right:6.0pt;text-align:right;
  text-indent:0cm;line-height:9.0pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:252.7pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMS&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;i . &lt;/span&gt;&lt;/span&gt;&lt;span
  class=CenturySchoolbook3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
  class=CenturySchoolbook3&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;t+1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=29 valign=top style=&#39;width:21.6pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:9.35pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-indent:0cm;line-height:10.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:252.7pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=10pt&gt;&lt;sup&gt;&lt;span
  lang=EN-US style=&#39;font-size:10.0pt&#39;&gt;r&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=59 valign=top style=&#39;width:43.9pt;border:none;border-top:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:9.35pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:252.7pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=28 valign=top style=&#39;width:21.1pt;border:none;border-top:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:9.35pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:252.7pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=69 valign=top style=&#39;width:52.1pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:9.35pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:252.7pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=37 valign=top style=&#39;width:27.85pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:9.35pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:252.7pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:5;mso-yfti-lastrow:yes;height:25.45pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;td width=31 valign=top style=&#39;width:23.5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:25.45pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:252.7pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=84 colspan=2 valign=top style=&#39;width:62.65pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:25.45pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 align=right style=&#39;margin-right:6.0pt;text-align:right;
  text-indent:0cm;line-height:9.0pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:252.7pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook3&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;\ &lt;sub&gt;t&lt;/sub&gt;
  S&lt;sub&gt;t+l&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=115 colspan=3 valign=top style=&#39;width:86.6pt;border-top:none;
  border-left:solid windowtext 1.0pt;border-bottom:solid windowtext 1.0pt;
  border-right:none;mso-border-left-alt:solid windowtext .5pt;mso-border-bottom-alt:
  solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;height:25.45pt;
  mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:9.0pt;text-indent:0cm;line-height:10.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:252.7pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMS0&gt;&lt;span
  lang=EN-US style=&#39;font-size:10.5pt&#39;&gt;Environment&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=69 valign=top style=&#39;width:52.1pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:25.45pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
  text-indent:0cm;line-height:10.0pt;mso-line-height-rule:exactly;tab-stops:
  dashed 49.9pt;background:transparent;mso-element:frame;mso-element-frame-width:
  252.7pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=CenturySchoolbook3&gt;&lt;span
  lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;M&lt;/span&gt;&lt;/span&gt;&lt;span class=10pt0&gt;&lt;span
  lang=EN-US style=&#39;font-size:10.0pt&#39;&gt;&lt;span style=&#39;mso-tab-count:1 dashed&#39;&gt;------- &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=37 valign=top style=&#39;width:27.85pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:25.45pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:252.7pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=center style=&#39;margin-top:5.85pt;margin-right:0cm;
margin-bottom:22.25pt;margin-left:0cm;text-align:center;text-indent:0cm;
line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Figure 3.1: The agent-environment interaction in reinforcement
learning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;More specifically, the agent
and environment interact at each of a sequence of discrete time steps, t = &lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, 3, . . .. &lt;/span&gt;&lt;a style=&#39;mso-footnote-id:ftn5&#39; href=&#34;#_ftn5&#34;
name=&#34;_ftnref5&#34; title=&#34;&#34;&gt;&lt;span class=9pt2&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=9pt2&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[5]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
lang=EN-US&gt; At each time step t, the agent receives some representation of the
environment\A1\AFs &lt;span class=afb&gt;state, S&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; G &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;S, where S is the set of possible states, and on that basis selects
an &lt;span class=afb&gt;action, A&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook2&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t G &lt;/span&gt;&lt;/span&gt;&lt;span class=afb&gt;&lt;span
lang=EN-US&gt;A(S&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook2&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;), where A(S&lt;/span&gt;&lt;span
class=CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) is the set of actions available in state S&lt;/span&gt;&lt;span
class=CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. One time step later, in part as a consequence of its action, the
agent receives a numerical &lt;span class=afb&gt;reward&lt;/span&gt;, R&lt;/span&gt;&lt;span
class=CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+i &lt;/span&gt;&lt;span class=CenturySchoolbook4&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;R &lt;/span&gt;&lt;span
class=CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;C &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;R, and finds itself in a new state, S&lt;/span&gt;&lt;span
class=CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+i&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;.&lt;a
style=&#39;mso-footnote-id:ftn6&#39; href=&#34;#_ftn6&#34; name=&#34;_ftnref6&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=9pt2&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[6]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; Figure 3.1 diagrams the agent-environment interaction.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;At each time step, the agent
implements a mapping from states to probabilities of selecting each possible
action. This mapping is called the agent\A1\AFs &lt;span class=afb&gt;policy&lt;/span&gt; and is
denoted n&lt;/span&gt;&lt;span class=CenturySchoolbook4&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, where n&lt;/span&gt;&lt;span
class=CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(a&lt;/span&gt;&lt;span class=CenturySchoolbook4&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;s) is the probability
that A&lt;/span&gt;&lt;span class=CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= &lt;span class=afb&gt;a&lt;/span&gt; if &lt;span
class=afb&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook2&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook4&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= s.
Reinforcement learning methods specify how the agent changes its policy as a
result of its experience. The agent\A1\AFs goal, roughly speaking, is to maximize
the total amount of reward it receives over the long run.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;This framework is abstract and
flexible and can be applied to many different problems in many different ways.
For example, the time steps need not refer to fixed intervals of real time;
they can refer to arbitrary successive stages of decision-making and acting.
The actions can be low-level controls, such as the voltages applied to the
motors of a robot arm, or high-level decisions, such as whether or not to have
lunch or to go to graduate school. Similarly, the states can take a wide
variety of forms. They can be completely determined by low-level sensations,
such as direct sensor readings, or they can be more high-level and abstract,
such as symbolic descriptions of objects in a room. Some of what makes up a
state could be based on memory of past sensations or even be entirely mental or
subjective. For example, an agent could be in the state of not being sure where
an object is, or of having just been surprised in some clearly defined sense.
Similarly, some actions might be totally mental or computational. For example,
some actions might control what an agent chooses to think about, or where it
focuses its attention. In general, actions can be any decisions we want to
learn how to make, and the states can be anything we can know that might be
useful in making them.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In particular, the boundary
between agent and environment is not often the same as the physical boundary of
a robot\A1\AFs or animal\A1\AFs body. Usually, the boundary is drawn closer to the agent
than that. For example, the motors and mechanical linkages of a robot and its
sensing hardware should usually be considered parts of the environment rather
than parts of the agent. Similarly, if we apply the framework to a person or
animal, the muscles, skeleton, and sensory organs should be considered part of
the environment. Rewards, too, presumably are computed inside the physical
bodies of natural and artificial learning systems, but are considered external
to the agent.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The general rule we follow is
that anything that cannot be changed arbitrarily by the agent is considered to
be outside of it and thus part of its environment. We do not assume that
everything in the environment is unknown to the agent. For example, the agent
often knows quite a bit about how its rewards are computed as a function of its
actions and the states in which they are taken. But we always consider the
reward computation to be external to the agent because it defines the task
facing the agent and thus must be beyond its ability to change arbitrarily. In
fact, in some cases the agent may know &lt;span class=afb&gt;everything&lt;/span&gt; about
how its environment works and still face a difficult reinforcement learning
task, just as we may know exactly how a puzzle like Rubik\A1\AFs cube works, but
still be unable to solve it. The agent-environment boundary represents the
limit of the agent\A1\AFs &lt;span class=afb&gt;absolute control&lt;/span&gt;, not of its
knowledge.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The agent-environment boundary
can be located at different places for different purposes. In a complicated
robot, many different agents may be operating at once, each with its own
boundary. For example, one agent may make high-level decisions which form part
of the states faced by a lower-level agent that implements the high- level
decisions. In practice, the agent-environment boundary is determined once one
has selected particular states, actions, and rewards, and thus has identified a
specific decision-making task of interest.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The reinforcement learning
framework is a considerable abstraction of the problem of goal-directed
learning from interaction. It proposes that whatever the details of the
sensory, memory, and control apparatus, and whatever objective one is trying to
achieve, any problem of learning goal-directed behavior can be reduced to three
signals passing back and forth between an agent and its environment: one signal
to represent the choices made by the agent (the actions), one signal to
represent the basis on which the choices are made (the states), and one signal
to define the agent\A1\AFs goal (the rewards). This framework may not be sufficient
to represent all decision- learning problems usefully, but it has proved to be
widely useful and applicable.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Of course, the particular
states and actions vary greatly from task to task, and how they are represented
can strongly affect performance. In reinforcement learning, as in other kinds
of learning, such representational choices are at present more art than
science. In this book we offer some advice and examples regarding good ways of
representing states and actions, but our primary focus is on general principles
for learning how to behave once the representations have been selected.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 400.85pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 3.1: Bioreactor Suppose
reinforcement learning is being applied to determine moment-by-moment
temperatures and stirring rates for a bioreactor (a large vat of nutrients and
bacteria used to produce useful chemicals). The actions in such an application
might be target temperatures and target stirring rates that are passed to
lower-level control systems that, in turn, directly activate heating elements
and motors to attain the targets. The states are likely to be thermocouple and
other sensory readings, perhaps filtered and delayed, plus symbolic inputs
representing the ingredients in the vat and the target chemical. The rewards
might be moment- by-moment measures of the rate at which the useful chemical is
produced by the bioreactor. Notice that here each state is a list, or vector,
of sensor readings and symbolic inputs, and each action is a vector consisting
of a target temperature and a stirring rate. It is typical of reinforcement
learning tasks to have states and actions with such structured representations.
Rewards, on the other hand, are always single numbers.&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 400.85pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 3.2: Pick-and-Place Robot
Consider using reinforcement learning to control the motion of a robot arm in a
repetitive pick-and-place task. If we want to learn movements that are fast and
smooth, the learning agent will have to control the motors directly and have
low-latency information about the current positions and velocities of the
mechanical linkages. The actions in this case might be the voltages applied to
each motor at each joint, and the states might be the latest readings of joint
angles and velocities. The reward might be +1 for each object successfully
picked up and placed. To encourage smooth movements, on each time step a small,
negative reward can be given as a function of the moment-to-moment \A1\B0jerkiness\A1\B1
of the motion.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 400.85pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 3.3: Recycling
Robot A mobile robot has the job of collecting empty soda cans in an office
environment. It has sensors for detecting cans, and an arm and gripper that can
pick them up and place them in an onboard bin; it runs on a rechargeable
battery. The robot\A1\AFs control system has components for interpreting sensory
information, for navigating, and for controlling the arm and gripper. High-
level decisions about how to search for cans are made by a reinforcement
learning agent based on the current charge level of the battery. This agent has
to decide whether the robot should (&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) actively search for a
can for a certain period of time, (2) remain stationary and wait for someone to
bring it a can, or (3) head back to its home base to recharge its battery. This
decision has to be made either periodically or whenever certain events occur,
such as finding an empty can. The agent therefore has three actions, and its
state is determined by the state of the battery. The rewards might be zero most
of the time, but then become positive when the robot secures an empty can, or
large and negative if the battery runs all the way down. In this example, the
reinforcement learning agent is not the entire robot. The states it monitors
describe conditions within the robot itself, not conditions of the robot\A1\AFs
external environment. The agent\A1\AFs environment therefore includes the rest of
the robot, which might contain other complex decision-making systems, as well
as the robot\A1\AFs external environment.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection55&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:2.8pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 398.8pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.1
Devise three example tasks of your own that fit into the reinforcement learning
framework, identifying for each its states, actions, and rewards. Make the
three examples as &lt;span class=afb&gt;different&lt;/span&gt; from each other as possible.
The framework is abstract and flexible and can be applied in many different
ways. Stretch its limits in some way in at least one of your examples.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:3.2pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;
tab-stops:right 398.8pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.2
Is the reinforcement learning framework adequate to usefully represent &lt;span
class=afb&gt;all&lt;/span&gt; goal-directed learning tasks? Can you think of any clear
exceptions?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:24.35pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 398.8pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.3
Consider the problem of driving. You could define the actions in terms of the
accelerator, steering wheel, and brake, that is, where your body meets the
machine. Or you could define them farther out\A1\AAsay, where the rubber meets the
road, considering your actions to be tire torques. Or you could define them
farther in\A1\AAsay, where your brain meets your body, the actions being muscle
twitches to control your limbs. Or you could go to a really high level and say
that your actions are your choices of &lt;span class=afb&gt;where&lt;/span&gt; to drive.
What is the right level, the right place to draw the line between agent and
environment? On what basis is one location of the line to be preferred over
another? Is there any fundamental reason for preferring one location over
another, or is it a free choice?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l98 level1 lfo11;
tab-stops:37.2pt;background:transparent&#39;&gt;&lt;a name=bookmark44&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;3.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Goals and
Rewards&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:12.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In reinforcement learning, the purpose
or goal of the agent is formalized in terms of a special reward signal passing
from the environment to the agent. At each time step, the reward is a simple
number, &lt;span class=afb&gt;Rt&lt;/span&gt; G R. Informally, the agent\A1\AFs goal is to
maximize the total amount of reward it receives. This means maximizing not
immediate reward, but cumulative reward in the long run. We can clearly state
this informal idea as the &lt;span class=afb&gt;reward hypothesis&lt;/span&gt;:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:27.0pt;margin-bottom:12.2pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;That all of what we mean by goals and purposes can be well thought
of as the maximization of the expected value of the cumulative sum of a
received scalar signal (called reward).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:2.8pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.2pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The use of a reward signal to
formalize the idea of a goal is one of the most distinctive features of
reinforcement learning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Although formulating goals in terms of reward
signals might at first appear limit&amp;shy;ing, in practice it has proved to be
flexible and widely applicable. The best way to see this is to consider
examples of how it has been, or could be, used. For example, to make a robot
learn to walk, researchers have provided reward on each time step proportional
to the robot\A1\AFs forward motion. In making a robot learn how to escape from a
maze, the reward is often &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;\A1\AA1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; for every time step
that passes prior to escape; this encourages the agent to escape as quickly as
possible. To make a robot learn to find and collect empty soda cans for
recycling, one might give it a reward of zero most of the time, and then a
reward of &lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; for each can collected. One might also want to give the robot
negative rewards when it bumps into things or when somebody yells at it. For an
agent to learn to play checkers or chess, the natural rewards are +1 for
winning, &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;\A1\AA1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; for losing, and &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; for drawing and for
all nonterminal positions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;You can see what is happening in all of these
examples. The agent always learns to maximize its reward. If we want it to do
something for us, we must provide rewards to it in such a way that in
maximizing them the agent will also achieve our goals. It is thus critical that
the rewards we set up truly indicate what we want accomplished. In particular,
the reward signal is not the place to impart to the agent prior knowledge about
&lt;span class=afb&gt;how&lt;/span&gt; to achieve what we want it to do&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;.&lt;a style=&#39;mso-footnote-id:
ftn7&#39; href=&#34;#_ftn7&#34; name=&#34;_ftnref7&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:
footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=9pt2&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[7]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; For example, a chess-playing agent should be rewarded only for
actually winning, not for achieving subgoals such as taking its opponent\A1\AFs
pieces or gaining control of the center of the board. If achieving these sorts
of subgoals were rewarded, then the agent might find a way to achieve them
without achieving the real goal. For example, it might find a way to take the
opponent\A1\AFs pieces even at the cost of losing the game. The reward signal is
your way of communicating to the robot &lt;span class=afb&gt;what&lt;/span&gt; you want it
to achieve, not &lt;span class=afb&gt;how&lt;/span&gt; you want it achieved.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Newcomers to reinforcement learning are sometimes
surprised that the rewards\A1\AA which define of the goal of learning\A1\AAare computed
in the environment rather than in the agent. Certainly most ultimate goals for
animals are recognized by computations occurring inside their bodies, for
example, by sensors for recognizing food, hunger, pain, and pleasure.
Nevertheless, as we discussed in the previous section, one can redraw the
agent-environment interface in such a way that these parts of the body are
considered to be outside of the agent (and thus part of the agent\A1\AFs
environment). For example, if the goal concerns a robot\A1\AFs internal energy
reservoirs, then these are considered to be part of the environment; if the
goal concerns the positions of the robot\A1\AFs limbs, then these too are considered
to be part of the environment\A1\AA that is, the agent\A1\AFs boundary is drawn at the
interface between the limbs and their control systems. These things are
considered internal to the robot but external to the learning agent. For our
purposes, it is convenient to place the boundary of the learning agent not at
the limit of its physical body, but at the limit of its control.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The reason we do this is that the agent\A1\AFs ultimate goal should be
something over which it has imperfect control: it should not be able, for
example, to simply &lt;span class=afb&gt;decree &lt;/span&gt;that the reward has been
received in the same way that it might arbitrarily change its actions.
Therefore, we place the reward source outside of the agent. This does not preclude
the agent from defining for itself a kind of internal reward, or a sequence of
internal rewards. Indeed, this is exactly what many reinforcement learning
methods do.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l98 level1 lfo11;
tab-stops:37.7pt;background:transparent&#39;&gt;&lt;a name=bookmark45&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;3.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Returns&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;So far we have discussed the objective of learning informally. We
have said that the agent\A1\AFs goal is to maximize the cumulative reward it
receives in the long run. How&lt;br clear=all style=&#39;page-break-before:always&#39;&gt;
might this be defined formally? If the sequence of rewards received after time
step &lt;span class=afb&gt;t&lt;/span&gt; is denoted Rt+i, Rt+&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, Rt+&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;3&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &amp;#8226; &amp;#8226; &amp;#8226;, then what precise aspect of this sequence do we wish to
maximize? In general, we seek to maximize the &lt;span class=afb&gt;expected return&lt;/span&gt;,
where the return &lt;span class=afb&gt;Gt&lt;/span&gt; is defined as some specific function
of the reward sequence. In the simplest case the return is the sum of the
rewards:&lt;/span&gt;&lt;/p&gt;

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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
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  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
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    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(3.1)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=212&gt;&lt;span lang=EN-US&gt;Gt&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; =
Rt&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU0&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;Rt&lt;/span&gt;&lt;span
class=21Batang2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU0&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;Rt&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+3 &lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU0&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;\A1\F6\A1\F6\A1\F6&lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU0&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span class=212&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang3&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;where &lt;span class=afb&gt;T&lt;/span&gt; is a
final time step. This approach makes sense in applications in which there is a
natural notion of final time step, that is, when the agent-environment
interaction breaks naturally into subsequences, which we call &lt;span class=afb&gt;episodes,&lt;a
style=&#39;mso-footnote-id:ftn8&#39; href=&#34;#_ftn8&#34; name=&#34;_ftnref8&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=afb&gt;&lt;b style=&#39;mso-bidi-font-weight:normal&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA;
font-style:normal&#39;&gt;[8]&lt;/span&gt;&lt;/sup&gt;&lt;/b&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;
such as plays of a game, trips through a maze, or any sort of repeated
interactions. Each episode ends in a special state called the &lt;span class=afb&gt;terminal
state&lt;/span&gt;, followed by a reset to a standard starting state or to a sample
from a standard distribution of starting states. Even if you think of episodes
as ending in different ways, such as winning and losing a game, the next
episode begins independently of how the previous one ended. Thus the episodes
can all be considered to end in the same terminal state, with different rewards
for the different outcomes. Tasks with episodes of this kind are called &lt;span
class=afb&gt;episodic tasks.&lt;/span&gt; In episodic tasks we sometimes need to
distinguish the set of all nonterminal states, denoted S, from the set of all
states plus the terminal state, denoted S+.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;On the other hand, in many
cases the agent-environment interaction does not break naturally into
identifiable episodes, but goes on continually without limit. For example, this
would be the natural way to formulate a continual process-control task, or an
application to a robot with a long life span. We call these &lt;span class=afb&gt;continuing
tasks.&lt;/span&gt; The return formulation (3.1) is problematic for continuing tasks
because the final time step would be &lt;span class=afb&gt;T&lt;/span&gt; = oo, and the
return, which is what we are trying to maximize, could itself easily be
infinite. (For example, suppose the agent receives a reward of &lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;1 &lt;/span&gt;&lt;span lang=EN-US&gt;at each time step.)
Thus, in this book we usually use a definition of return that is slightly more
complex conceptually but much simpler mathematically.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.55pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The additional concept that we need is that of &lt;span class=afb&gt;discounting&lt;/span&gt;.
According to this approach, the agent tries to select actions so that the sum
of the discounted rewards it receives over the future is maximized. In
particular, it chooses &lt;span class=afb&gt;At&lt;/span&gt; to maximize the expected &lt;span
class=afb&gt;discounted return&lt;/span&gt;:&lt;/span&gt;&lt;/p&gt;

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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(3.2)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=212&gt;&lt;span lang=EN-US&gt;Gt&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span
class=21MingLiU0&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;ʿ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;Rt+i &lt;/span&gt;&lt;span
class=21MingLiU0&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;YRt+2 &lt;/span&gt;&lt;span
class=21MingLiU0&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;Y&lt;sup&gt;2&lt;/sup&gt;Rt+3 &lt;/span&gt;&lt;span
class=21MingLiU0&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; =&lt;/span&gt;&lt;span class=21MingLiU0&gt;&lt;span style=&#39;font-size:9.0pt;
mso-ansi-language:ZH-TW&#39;&gt;\B7\A6\A1\B3&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Y&lt;sup&gt;k&lt;/sup&gt;Rt+fc+i,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:4.25pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;where &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; is a
parameter, &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &amp;lt; &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &amp;lt; &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, called the
&lt;span class=afb&gt;discount rate.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The discount rate determines the present value of future rewards: a
reward received &lt;span class=afb&gt;k&lt;/span&gt; time steps in the future is worth only
&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;sup&gt;k-1&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; times what it would be worth if it were received immediately. If &lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &amp;lt; 1, the infinite sum has a finite value as long as the reward
sequence {Rk} is bounded. If &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = 0, the agent is
\A1\B0myopic\A1\B1 in being concerned only with maximizing immediate rewards: its
objective in this case is to learn how to choose At so as to maximize only
Rt+i. If each of the agent\A1\AFs actions happened&lt;br clear=all style=&#39;page-break-before:
always&#39;&gt;
to influence only the immediate reward, not future rewards as well, then a
myopic agent could maximize (3.2) by separately maximizing each immediate
reward. But in general, acting to maximize immediate reward can reduce access
to future rewards so that the return may actually be reduced. As &lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; approaches &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, the objective takes
future rewards into account more strongly: the agent becomes more farsighted.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 399.1pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 3.4: Pole-Balancing Figure 3.2
shows a task that served as an early illustration of reinforcement learning.
The objective here is to apply forces to a cart moving along a track so as to
keep a pole hinged to the cart from falling over. A failure is said to occur if
the pole falls past a given angle from vertical or if the cart runs off the
track. The pole is reset to vertical after each failure. This task could be
treated as episodic, where the natural episodes are the repeated attempts to
balance the pole. The reward in this case could be +1 for every time step on
which failure did not occur, so that the return at each time would be the
number of steps until failure. Alternatively, we could treat pole-balancing as
a continuing task, using discounting. In this case the reward would be \A1\AA1 on
each failure and zero at all other times. The return at each time would then be
related to \A1\AA&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;K&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;, where &lt;span class=afb&gt;K&lt;/span&gt; is the
number of time steps before failure. In either case, the return is maximized by
keeping the pole balanced for as long as possible.&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 399.1pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.4 Suppose you treated
pole-balancing as an episodic task but also used discounting, with all rewards
zero except for \A1\AA1 upon failure. What then would the return be at each time?
How does this return differ from that in the discounted, continuing formulation
of this task?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:174.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 399.1pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.5 Imagine that you are
designing a robot to run a maze. You decide to give it a reward of &lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; for escaping from the maze and a reward of zero at all other times.
The task seems to break down naturally into episodes\A1\AAthe successive runs
through the maze\A1\AAso you decide to treat it as an episodic task, where the goal
is to maximize expected total reward (3.1). After running the learning agent
for a while, you find that it is showing no improvement in escaping from the
maze. What is going wrong? Have you effectively communicated to the agent what
you want it to achieve?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=center style=&#39;margin-left:1.0pt;text-align:center;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Figure 3.2: The pole-balancing task.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection56&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The returns at successive times are related to each other in a way
that is important for the theory and algorithms of reinforcement learning:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.0pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:dashed 238.25pt;
background:transparent&#39;&gt;&lt;span class=afb&gt;&lt;span lang=EN-US&gt;Gt = &lt;sup&gt;R&lt;/sup&gt;t+i&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + Y &lt;span class=afb&gt;&lt;sup&gt;R&lt;/sup&gt;t+2&lt;/span&gt; + Y&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt; &lt;span class=afb&gt;R&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;span class=afb&gt;&lt;span
lang=EN-US&gt;t+3&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + Y &lt;/span&gt;&lt;span class=9pt2&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;3&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t+4 +&lt;span style=&#39;mso-tab-count:1 dashed&#39;&gt;----- &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.85pt;
margin-left:43.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;=&lt;span class=afb&gt;Rt+i&lt;/span&gt; + Y(Rt&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + YRt+3 +
y &lt;/span&gt;&lt;span class=Georgia0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=afb&gt;&lt;span lang=EN-US&gt;Rt+4&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; +\A1\AA)&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.05pt;
margin-left:43.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
right 398.55pt;background:transparent&#39;&gt;&lt;!--[if supportFields]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-element:field-begin&#39;&gt;&lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;TOC \o &amp;quot;1-5&amp;quot; \h \z &lt;span
style=&#39;mso-element:field-separator&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;span lang=EN-US&gt;=&lt;span
class=aff1&gt;Rt+i&lt;/span&gt; + YGt+i&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(3.3)&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.2pt;
margin-left:0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Note that this works for all time steps t &amp;lt; T,
even if termination occurs at t + 1, if we define &lt;span class=aff2&gt;Gt&lt;/span&gt; =
0. This often makes it easy to compute returns from reward sequences.&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 398.55pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.6 Suppose y
= 0.5 and the following sequence of rewards is received &lt;span class=aff1&gt;Ri&lt;/span&gt;
= \A1\AA1, &lt;span class=aff1&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span class=Georgia1&gt;&lt;span lang=EN-US
style=&#39;font-size:5.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = 2, &lt;span class=aff1&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=Georgia1&gt;&lt;span lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;3&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; = &lt;/span&gt;&lt;span class=9pt3&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &lt;span class=aff1&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span class=Georgia1&gt;&lt;span
lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;4&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = 3, and R&lt;/span&gt;&lt;span
class=9pt3&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;5&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; = 2, with &lt;span class=aff1&gt;T&lt;/span&gt; = 5. What are Go, Gi,..., G&lt;/span&gt;&lt;span
class=9pt3&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;5&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;? Hint: Work backwards.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.15pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Note that although the return
(3.2) is a sum of an infinite number of terms, it is still finite if the reward
is nonzero and constant. For example, if the reward is a constant +&lt;/span&gt;&lt;span
class=9pt3&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, then the return is&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:28.0pt;margin-bottom:.0001pt;line-height:9.5pt;mso-line-height-rule:
exactly;tab-stops:right 398.55pt;background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;Gt&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; = E &lt;span class=aff1&gt;&lt;sup&gt;Y&lt;/sup&gt;&lt;/span&gt; = i^ &amp;#8226;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(3&lt;/sup&gt;.&lt;sup&gt;4)&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=3f0 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.05pt;
margin-left:54.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=3Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;=0&lt;/span&gt;&lt;span class=3Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.55pt;
margin-left:0cm;line-height:13.7pt;mso-line-height-rule:exactly;tab-stops:right 398.55pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.7 Suppose Y = 0.9 and the
reward sequence is Ri = 2 followed by an infinite sequence of 7s. What are Gi
and Go?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-end&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l98 level1 lfo11;
tab-stops:36.95pt;background:transparent&#39;&gt;&lt;a name=bookmark46&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;3.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Unified Notation
for Episodic and Continuing Tasks&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In the preceding section we described two kinds of reinforcement
learning tasks, one in which the agent-environment interaction naturally breaks
down into a sequence of separate episodes (episodic tasks), and one in which it
does not (continuing tasks). The former case is mathematically easier because
each action affects only the finite number of rewards subsequently received
during the episode. In this book we consider sometimes one kind of problem and
sometimes the other, but often both. It is therefore useful to establish one
notation that enables us to talk precisely about both cases simultaneously.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;To be precise about episodic
tasks requires some additional notation. Rather than one long sequence of time
steps, we need to consider a series of episodes, each of which consists of a
finite sequence of time steps. We number the time steps of each episode
starting anew from zero. Therefore, we have to refer not just to St, the state
representation at time t, but to &lt;span class=afb&gt;St,i,&lt;/span&gt; the state
representation at time t of episode &lt;span class=afb&gt;i &lt;/span&gt;(and similarly for
At,i, &lt;span class=afb&gt;Rt,i, nt,i,&lt;/span&gt; Ti, etc.). However, it turns out that,
when we discuss episodic tasks we will almost never have to distinguish between
different episodes. We will almost always be considering a particular single
episode, or stating something that is true for all episodes. Accordingly, in
practice we will almost always abuse notation slightly by dropping the explicit
reference to episode number. That is, we will write &lt;span class=afb&gt;St&lt;/span&gt;
to refer to &lt;span class=afb&gt;St,i,&lt;/span&gt; and so on.&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.3pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;We need one other convention to obtain a single notation that covers
both episodic and continuing tasks. We have defined the return as a sum over a
finite number of terms in one case (3.1) and as a sum over an infinite number
of terms in the other (3.2). These can be unified by considering episode
termination to be the entering of a special &lt;span class=afb&gt;absorbing state&lt;/span&gt;
that transitions only to itself and that generates only rewards of zero. For
example, consider the state transition diagram&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:20.9pt;mso-element-frame-hspace:
56.9pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
mso-element-anchor-horizontal:column;mso-element-left:56.95pt;mso-element-top:
.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=28&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=28 style=&#39;padding-top:0cm;padding-right:
  56.9pt;padding-bottom:0cm;padding-left:56.9pt&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:20.9pt;mso-element-frame-hspace:56.9pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:56.95pt;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_8&#34; o:spid=&#34;_x0000_i1115&#34;
   type=&#34;#_x0000_t75&#34; alt=&#34;image9&#34; style=&#39;width:180.75pt;height:21pt;
   visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image011.png&#34;
    o:title=&#34;image9&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:27.15pt;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_781&#34; o:spid=&#34;_x0000_s1658&#34; type=&#34;#_x0000_t75&#34;
 alt=&#34;image10&#34; style=&#39;position:absolute;left:0;text-align:left;margin-left:260.9pt;
 margin-top:98.15pt;width:73.45pt;height:30.25pt;z-index:251676458;
 visibility:visible;mso-wrap-style:square;mso-width-percent:0;
 mso-height-percent:0;mso-wrap-distance-left:5pt;mso-wrap-distance-top:0;
 mso-wrap-distance-right:5pt;mso-wrap-distance-bottom:0;
 mso-position-horizontal:absolute;mso-position-horizontal-relative:margin;
 mso-position-vertical:absolute;mso-position-vertical-relative:margin;
 mso-width-percent:0;mso-height-percent:0;mso-width-relative:page;
 mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image012.png&#34;
  o:title=&#34;image10&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Here the solid square represents the special
absorbing state corresponding to the end&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
lined 399.4pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;of an episode. Starting
from So, we get the reward sequence +1, +1, +1, 0, 0, 0,&lt;span style=&#39;mso-tab-count:
1 lined&#39;&gt;_____ &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Summing these, we get the same return whether we sum over the first
T rewards (here T = 3) or over the full infinite sequence. This remains true
even if we introduce discounting. Thus, we can define the return, in general,
according to (3.2), using the convention of omitting episode numbers when they
are not needed, and including the possibility that &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = &lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; if the sum remains defined (e.g., because all episodes terminate).
Alternatively, we can also write the return as&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.6pt;
margin-left:54.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;T-i&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;-1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-top:0cm;margin-right:1.0pt;
margin-bottom:22.75pt;margin-left:0cm;text-align:right;text-indent:0cm;
line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;(3.5)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;including the possibility that T = &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;00&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; or &lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; = 1 (but not both). We use these con&amp;shy;ventions throughout the rest
of the book to simplify notation and to express the close parallels between
episodic and continuing tasks. (Later, in Chapter 10, we will introduce a
formulation that is both continuing and undiscounted.)&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.35pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l98 level1 lfo11;
tab-stops:38.2pt;background:transparent&#39;&gt;&lt;a name=bookmark47&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;3.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;*The Markov
Property&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In the reinforcement learning framework, the agent makes its
decisions as a function of a signal from the environment called the
environment\A1\AFs &lt;span class=afb&gt;state&lt;/span&gt;. In this section we discuss what is
required of the state signal, and what kind of information we should and should
not expect it to provide. In particular, we formally define a property of
environments and their state signals that is of particular interest, called the
Markov property.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In this book, by \A1\B0the state\A1\B1 we mean whatever
information is available to the agent. We assume that the state is given by
some preprocessing system that is nominally part of the environment. We do not
address the issues of constructing, changing, or learning the state signal in
this book. We take this approach not because we consider state representation
to be unimportant, but in order to focus fully on the decision-making issues.
In other words, our main concern is not with designing the state signal, but
with deciding what action to take as a function of whatever state&lt;br clear=all
style=&#39;page-break-before:always&#39;&gt;
signal is available. By convention, the reward signal is not part of the state,
but a copy of it certainly could be.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Certainly the state signal
should include immediate sensations such as sensory measurements, but it can
contain much more than that. State representations can be highly processed
versions of original sensations, or they can be complex structures built up
over time from the sequence of sensations. For example, we can move our eyes
over a scene, with only a tiny spot corresponding to the fovea visible in
detail at any one time, yet build up a rich and detailed representation of a
scene. Or, more obviously, we can look at an object, then look away, and know
that it is still there. We can hear the word \A1\B0yes\A1\B1 and consider ourselves to be
in totally different states depending on the question that came before and
which is no longer audible. At a more mundane level, a control system can
measure position at two different times to produce a state representation
including information about velocity. In all of these cases the state is
constructed and maintained on the basis of immediate sensations together with
the previous state or some other memory of past sensations. In this book, we do
not explore how that is done, but certainly it can be and has been done. There
is no reason to restrict the state representation to immediate sensations; in
typical applications we should expect the state representation to be able to
inform the agent of more than that.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;On the other hand, the state
signal should not be expected to inform the agent of everything about the
environment, or even everything that would be useful to it in making decisions.
If the agent is playing blackjack, we should not expect it to know what the
next card in the deck is. If the agent is answering the phone, we should not
expect it to know in advance who the caller is. If the agent is a paramedic
called to a road accident, we should not expect it to know immediately the
internal injuries of an unconscious victim. In all of these cases there is
hidden state information in the environment, and that information would be
useful if the agent knew it, but the agent cannot know it because it has never
received any relevant sensations. In short, we don\A1\AFt fault an agent for not
knowing something that matters, but only for having known something and then
forgotten it!&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;What we would like, ideally,
is a state signal that summarizes past sensations compactly, yet in such a way
that all relevant information is retained. This normally requires more than the
immediate sensations, but never more than the complete history of all past
sensations. A state signal that succeeds in retaining all relevant information
is said to be &lt;span class=afb&gt;Markov&lt;/span&gt;, or to have &lt;span class=afb&gt;the Markov
property&lt;/span&gt; (we define this formally below). For example, a checkers
position\A1\AAthe current configuration of all the pieces on the board\A1\AAwould serve
as a Markov state because it summarizes everything important about the complete
sequence of positions that led to it. Much of the information about the
sequence is lost, but all that really matters for the future of the game is
retained. Similarly, the current position and velocity of a cannonball is all
that matters for its future flight. It doesn\A1\AFt matter how that position and
velocity came about. This is sometimes also referred to as an \A1\B0independence of
path\A1\B1 property because all that matters is in the current state signal; its
meaning is independent of the \A1\B0path,\A1\B1 or history, of signals that have led up
to it.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;We now formally define the Markov property for the reinforcement
learning prob&amp;shy;lem. To keep the mathematics simple, we assume here that there
are a finite number of states and reward values. This enables us to work in
terms of sums and proba&amp;shy;bilities rather than integrals and probability
densities, but the argument can easily be extended to include continuous states
and rewards (or infinite discrete spaces). Consider how a general environment
might respond at time t+ 1 to the action taken at time t. In the most general,
causal case, this response may depend on every&amp;shy;thing that has happened earlier.
In this case the dynamics can be defined only by specifying the complete joint
probability distribution:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.25pt;
margin-left:27.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 398.05pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Pr{St+i = &lt;span class=afb&gt;s&lt;sup&gt;f&lt;/sup&gt;,
Rt+i&lt;/span&gt; = &lt;span class=afb&gt;r&lt;/span&gt; | So, Ao, &lt;span class=afb&gt;Ri,&lt;/span&gt;&lt;/span&gt;&lt;span
class=afb&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\AD&lt;/span&gt;&lt;/span&gt;&lt;span
class=afb&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A3\AC&lt;/span&gt;&lt;span lang=EN-US&gt;St-i,At-i,
Rt, St&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, &lt;span class=afb&gt;At&lt;/span&gt;},&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(3.6)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;for all r, &lt;span class=afb&gt;s&lt;sup&gt;f&lt;/sup&gt;,&lt;/span&gt; and all possible
values of the past events: So, Ao, Ri,&lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;\A1\AD&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\A3\AC&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;St_i, At&lt;sub&gt;-&lt;/sub&gt;&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, &lt;span class=afb&gt;Rt,
St, At.&lt;/span&gt; If the state signal has the &lt;span class=afb&gt;Markov property,&lt;/span&gt;
on the other hand, then the environment\A1\AFs response at t&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; depends
only on the state and action representations at t, in which case the
environment\A1\AFs dynamics can be defined by specifying only&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.0pt;
margin-left:27.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 398.05pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;p(s&#39;,r|s,a) == Pr{St+i = &lt;span
class=afb&gt;s&lt;sup&gt;!&lt;/sup&gt;,&lt;/span&gt; Rt+i = &lt;span class=afb&gt;r&lt;/span&gt; | &lt;span
class=afb&gt;St&lt;/span&gt; = s, At = a},&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(3.7)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;for all r, s&#39;, s, and a. In other
words, a state signal has the Markov property, and is a Markov state, if and
only if (3.6) is equal to p(s&#39;, r|St, At) for all s&#39;, r, and histories, So, Ao,
Ri,&lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\AD&lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\A3\AC&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;St_i,
At&lt;sub&gt;-&lt;/sub&gt;i, Rt, St, At. In this case, the environment and task as a whole
are also said to have the Markov property.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If an environment has the Markov
property, then its one-step dynamics (3.7) enable us to predict the next state
and expected next reward given the current state and action. One can show that,
by iterating this equation, one can predict all future states and expected
rewards from knowledge only of the current state as well as would be possible
given the complete history up to the current time. It also follows that Markov
states provide the best possible basis for choosing actions. That is, the best
policy for choosing actions as a function of a Markov state is just as good as
the best policy for choosing actions as a function of complete histories.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Even when the state signal is
non-Markov, it is still appropriate to think of the state in reinforcement
learning as an approximation to a Markov state. In particular, we always want
the state to be a good basis for predicting future rewards and for selecting
actions. In cases in which a model of the environment is learned (see Chapter &lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;), we also want the state to be a good basis for predicting
subsequent states. Markov states provide an unsurpassed basis for doing all of
these things. To the extent that the state approaches the ability of Markov
states in these ways, one will obtain better performance from reinforcement
learning systems. For all of these reasons, it is useful to think of the state
at each time step as an approximation to a Markov state, although one should
remember that it may not fully satisfy the Markov property.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The Markov property is important in reinforcement learning because
decisions and values are assumed to be a function only of the current state. In
order for these to be effective and informative, the state representation must
be informative. All of the theory presented in this book assumes Markov state
signals. This means that not all the theory strictly applies to cases in which
the Markov property does not strictly apply. However, the theory developed for
the Markov case still helps us to understand the behavior of the algorithms,
and the algorithms can be successfully applied to many tasks with states that
are not strictly Markov. A full understanding of the theory of the Markov case
is an essential foundation for extending it to the more complex and realistic
non-Markov case. Finally, we note that the assumption of Markov state
representations is not unique to reinforcement learning but is also present in
most if not all other approaches to artificial intelligence.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 3.5: Pole-Balancing State In the
pole-balancing task introduced earlier, a state signal would be Markov if it
specified exactly, or made it possible to reconstruct exactly, the position and
velocity of the cart along the track, the angle between the cart and the pole,
and the rate at which this angle is changing (the angular velocity). In an idealized
cart-pole system, this information would be sufficient to exactly predict the
future behavior of the cart and pole, given the actions taken by the
controller. In practice, however, it is never possible to know this information
exactly because any real sensor would introduce some distortion and delay in
its measurements. Furthermore, in any real cart-pole system there are always
other effects, such as the bending of the pole, the temperatures of the wheel
and pole bearings, and various forms of backlash, that slightly affect the
behavior of the system. These factors would cause violations of the Markov
property if the state signal were only the positions and velocities of the cart
and the pole.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 400.85pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;However, often the positions and
velocities serve quite well as states. Some early studies of learning to solve
the pole-balancing task used a coarse state signal that divided cart positions
into three regions: right, left, and middle (and similar rough quantizations of
the other three intrinsic state variables). This distinctly non-Markov state
was sufficient to allow the task to be solved easily by reinforcement learning
methods. In fact, this coarse representation may have facilitated rapid
learning by forcing the learning agent to ignore fine distinctions that would
not have been useful in solving the task.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 3.6: Draw Poker In draw poker, each
player is dealt a hand of five cards. There is a round of betting, in which
each player exchanges some of his cards for new ones, and then there is a final
round of betting. At each round, each player must match or exceed the highest
bets of the other players, or else drop out (fold). After the second round of
betting, the player with the best hand who has not folded is the winner and
collects all the bets.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The state signal in draw poker is different for
each player. Each player knows the cards in his own hand, but can only guess at
those in the other players\A1\AF hands. A common mistake is to think that a Markov
state signal should include the contents of all the players\A1\AF hands and the
cards remaining in the deck. In a fair game, however, we assume that the
players are in principle unable to determine these things from their past
observations. If a player did know them, then she could predict some future
events (such as the cards one could exchange for) &lt;span class=afb&gt;better&lt;/span&gt;
than by remembering all past observations.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In addition to knowledge of one\A1\AFs own cards, the
state in draw poker should include the bets and the numbers of cards drawn by
the other players. For example, if one of the other players drew three new
cards, you may suspect he retained a pair and adjust your guess of the strength
of his hand accordingly. The players\A1\AF bets also influence your assessment of
their hands. In fact, much of your past history with these particular players
is part of the Markov state. Does Ellen like to bluff, or does she play
conservatively? Does her face or demeanor provide clues to the strength of her
hand? How does Joe\A1\AFs play change when it is late at night, or when he has
already won a lot of money?&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Although everything ever observed about the other
players may have an effect on the probabilities that they are holding various
kinds of hands, in practice this is far too much to remember and analyze, and
most of it will have no clear effect on one\A1\AFs predictions and decisions. Very
good poker players are adept at remembering just the key clues, and at sizing
up new players quickly, but no one remembers everything that is relevant. As a
result, the state representations people use to make their poker decisions are
undoubtedly non-Markov, and the decisions themselves are presumably imperfect.
Nevertheless, people still make very good decisions in such tasks. We conclude
that the inability to have access to a &lt;span class=afb&gt;perfect&lt;/span&gt; Markov
state representation is probably not a severe problem for a reinforcement
learning agent.&lt;/span&gt;&lt;/p&gt;

&lt;p class=221 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.8pt;
margin-left:0cm;line-height:13.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 401.25pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.8: &lt;span class=afb&gt;Broken
Vision System&lt;/span&gt; Imagine that you are a vision system. When you are first
turned on for the day, an image floods into your camera. You can see lots of
things, but not all things. You can\A1\AFt see objects that are occluded, and of
course you can\A1\AFt see objects that are behind you. After seeing that first
scene, do you have access to the Markov state of the environment? Suppose your
camera was broken that day and you received no images at all, all day. Would
you have access to the Markov state then?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.8pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l98 level1 lfo11;
tab-stops:37.95pt;background:transparent&#39;&gt;&lt;a name=bookmark48&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;3.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Markov Decision
Processes&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;A reinforcement learning task that satisfies the
Markov property is called a &lt;span class=afb&gt;Markov decision process&lt;/span&gt;, or &lt;span
class=afb&gt;MDP&lt;/span&gt;. If the state and action spaces are finite, then it is
called a &lt;span class=afb&gt;finite Markov decision process (finite MDP).&lt;/span&gt;
Finite MDPs are particularly important to the theory of reinforcement learning.
We treat them extensively throughout this book; they are all you need to
understand 90% of modern reinforcement learning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.55pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;A particular finite MDP is defined by its state and action sets and
by the one-step dynamics of the environment. Given any state and action &lt;span
class=afb&gt;s&lt;/span&gt; and a, the probability of each possible pair of next state
and reward, s&lt;sup&gt;;&lt;/sup&gt;, r, is denoted&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.65pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:right 401.25pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;p(s&#39;,r|s,a) &lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʿ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;Pr{&lt;span class=afb&gt;St+i&lt;/span&gt;
= s&lt;sup&gt;;&lt;/sup&gt;, Rt+i = r | &lt;span class=afb&gt;St&lt;/span&gt; = s, At = a}.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(3.8)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;These quantities completely specify the dynamics
of a finite MDP. Most of the theory we present in the rest of this book
implicitly assumes the environment is a finite MDP.&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection57&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Given the dynamics as specified by (3.8), one can compute anything
else one might want to know about the environment, such as the expected rewards
for state-action pairs,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.5pt;
margin-left:29.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:255.8pt right 400.25pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;r(s,a) = E[Ri&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; | Si = s,
Ai = a] = [ r&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;r|s,
a),&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(3.9)&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
4.4pt;margin-left:192.0pt;text-align:left;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=44&gt;&lt;span lang=EN-US&gt;reR s&lt;sup&gt;;&lt;/sup&gt;es&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f style=&#39;margin-bottom:5.95pt;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=41&gt;&lt;span lang=EN-US
style=&#39;font-style:normal&#39;&gt;the &lt;/span&gt;&lt;/span&gt;&lt;span class=44&gt;&lt;span lang=EN-US&gt;state-transition
probabilities,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.1pt;
margin-left:29.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:right 400.25pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;p(s&#39;|s,a) = Pr{Si&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;sub&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; = &lt;span class=afb&gt;s&#39;&lt;/span&gt; | Si = s, Ai = a} &lt;span class=afb&gt;= ^^&lt;/span&gt;p(s&lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;sup&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BB&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,r|s,a),&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(3.10)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.4pt;
margin-left:230.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;reR&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:11.7pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;and the expected rewards for
state-action-next-state triples,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.85pt;
margin-left:29.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:right 400.25pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;r(s,a,s&#39;) ^ E[Ri&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; | Si = s, Ai = a,Si&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = s&#39;] = &lt;span
class=afc&gt;[&lt;sup&gt;e&lt;/sup&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span class=afc&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiU9&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;\C1\CB&lt;/span&gt;&lt;/span&gt;&lt;span class=afc&gt;&lt;span lang=EN-US&gt;(^ &lt;/span&gt;&lt;/span&gt;&lt;span
class=afc&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;:&lt;/span&gt;&lt;/span&gt;&lt;span
class=afc&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A3\AC&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;a)&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(3.11)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In the first edition of this book, the dynamics were expressed
exclusively in terms of the latter two quantities, which were denoted PL, and &lt;span
class=afb&gt;R:,&lt;/span&gt; respectively. One weakness of that notation is that it
still did not fully characterize the dynamics of the rewards, giving only their
expectations. Another weakness is the excess of subscripts and superscripts. In
this edition we will predominantly use the explicit notation of (3.8), while
sometimes referring directly to the transition probabilities (3.10).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 400.25pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.9 If the current state is
Si, and actions are selected according to stochas&amp;shy;tic policy n, then what is
the expectation of Ri&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; in terms of the four-argument function
&lt;span class=afb&gt;p&lt;/span&gt; (3.8)?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Example 3.7: Recycling Robot MDP The recycling robot (Example 3.3)
can be turned into a simple example of an MDP by simplifying it and providing
some more details. (Our aim is to produce a simple example, not a particularly
realistic one.) Recall that the agent makes a decision at times determined by
external events (or by other parts of the robot\A1\AFs control system). At each such
time the robot decides whether it should (&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) actively
search for a can, (&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) remain stationary and wait for someone
to bring it a can, or (3) go back to home base to recharge its battery. Suppose
the environment works as follows. The best way to find cans is to actively
search for them, but this runs down the robot\A1\AFs battery, whereas waiting does
not. Whenever the robot is searching, the possibility exists that its battery
will become depleted. In this case the robot must shut down and wait to be
rescued (producing a low reward).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The agent makes its decisions solely as a function of the energy
level of the battery. It can distinguish two levels, high and low, so that the
state set is S = {high, low}. Let us call the possible decisions\A1\AAthe agent\A1\AFs
actions\A1\AAwait, search, and recharge. When the energy level is high, recharging
would always be foolish, so we do not include it in the action set for this
state. The agent\A1\AFs action sets are&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.65pt;
margin-left:29.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 83.7pt left 95.0pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;A(high)&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;=&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;{search,wait}&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:29.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:right 83.7pt left 95.0pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;A(low)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;=&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;{search, wait, recharge}.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.3pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;If the energy level is high, then a period of active search can
always be completed without risk of depleting the battery. A period of
searching that begins with a high energy level leaves the energy level high
with probability &lt;span class=afb&gt;a&lt;/span&gt; and reduces it to low with
probability 1 \A1\AA a. On the other hand, a period of searching undertaken when the
energy level is low leaves it low with probability &lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;¬&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span
lang=EN-US&gt;and depletes the battery with probability &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; \A1\AA&lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;¬&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.In
the latter case, the robot must be rescued, and the battery is then recharged
back to high. Each can collected by the robot counts as a unit reward, whereas
a reward of \A1\AA3 results whenever the robot has to be rescued. Let rsearch and r&lt;sub&gt;W&lt;/sub&gt;ait,
with rsearch &amp;gt; r&lt;sub&gt;W&lt;/sub&gt;ait, respectively denote the expected number of
cans the robot will collect (and hence the expected reward) while searching and
while waiting. Finally, to keep things simple, suppose that no cans can be
collected during a run home for recharging, and that no cans can be collected
on a step in which the battery is depleted. This system is then a finite MDP,
and we can write down the transition probabilities and the expected rewards, as
in Table 3.1.&lt;/span&gt;&lt;/p&gt;

&lt;div align=center&gt;

&lt;table class=MsoNormalTable border=0 cellspacing=0 cellpadding=0
 style=&#39;border-collapse:collapse;mso-table-layout-alt:fixed;mso-table-overlap:
 never;mso-padding-alt:0cm .5pt 0cm .5pt&#39;&gt;
 &lt;tr style=&#39;mso-yfti-irow:0;mso-yfti-firstrow:yes;height:13.7pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;td width=46 valign=top style=&#39;width:34.3pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:8.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:222.5pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=71 valign=top style=&#39;width:53.3pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:6.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:222.5pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=44 valign=top style=&#39;width:33.35pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:7.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:222.5pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=afb&gt;&lt;span
  lang=EN-US&gt;s&lt;sup&gt;!&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=28 valign=top style=&#39;width:20.9pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:7.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:222.5pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US&gt;p(&lt;sup&gt;s&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=38 valign=top style=&#39;width:28.55pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:222.5pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;|s&lt;/span&gt;&lt;/sup&gt;&lt;span
  lang=EN-US&gt;,&lt;sup&gt;a&lt;/sup&gt;)&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=69 valign=top style=&#39;width:52.1pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:6.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:222.5pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US&gt;r(s, a, s&lt;/span&gt;&lt;span
  class=9pt2&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
  lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:1;height:12.25pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=46 valign=top style=&#39;width:34.3pt;border:none;border-top:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.25pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:8.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:222.5pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US&gt;high&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=71 valign=top style=&#39;width:53.3pt;border:none;border-top:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.25pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:6.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:222.5pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US&gt;search&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=44 valign=top style=&#39;width:33.35pt;border:none;border-top:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.25pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:7.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:222.5pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US&gt;high&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=28 valign=top style=&#39;width:20.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:12.25pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:7.0pt;text-indent:0cm;line-height:9.5pt;
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  &lt;p class=afffff6 style=&#39;margin-left:6.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:222.5pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=aff4&gt;&lt;span
  lang=EN-US&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:222.5pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=297 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left style=&#39;padding-top:0cm;padding-right:0cm;
  padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=afffff9 style=&#39;background:transparent;mso-element:frame;mso-element-frame-width:
  222.5pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US&gt;Table 3.1: Transition
  probabilities and expected rewards for the finite MDP of the recycling robot
  example. There is a row for each possible combination of current state, s,
  next state, s&lt;sup&gt;7&lt;/sup&gt;, and action possible in the current state, a &lt;/span&gt;&lt;span
  class=ArialUnicodeMS1&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
  lang=EN-US&gt;A(s).&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:48.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:136.8pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=182 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=182 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:136.8pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_9&#34; o:spid=&#34;_x0000_i1114&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image11&#34;
   style=&#39;width:273.75pt;height:137.25pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image013.jpg&#34;
    o:title=&#34;image11&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=afffff8 align=left style=&#39;text-align:left;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-height:136.8pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US&gt;Figure 3.3: Transition graph for the
  recycling robot example.&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Courier New&#34;;
mso-fareast-font-family:&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;
mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=231 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:1.05pt;
margin-left:0cm;line-height:13.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;A &lt;span class=afb&gt;transition graph&lt;/span&gt; is a useful way to
summarize the dynamics of a finite MDP. Figure 3.3 shows the transition graph
for the recycling robot example. There are two kinds of nodes: &lt;span class=afb&gt;state
nodes&lt;/span&gt; and &lt;span class=afb&gt;action nodes.&lt;/span&gt; There is a state node for
each possible state (a large open circle labeled by the name of the state), and
an action node for each state-action pair (a small solid circle labeled by the
name of the action and connected by a line to the state node). Starting in
state s and taking action a moves you along the line from state node s to
action node (s, a). Then the environment responds with a transition to the next
state\A1\AFs node via one of the arrows leaving action node (s, a). Each arrow
corresponds to a triple (s, s&lt;sup&gt;;&lt;/sup&gt;, a), where &lt;span class=afb&gt;s&lt;sup&gt;f&lt;/sup&gt;&lt;/span&gt;
is the next state, and we label the arrow with the transition probability, p(s&lt;sup&gt;;&lt;/sup&gt;|s,
a), and the expected reward for that transition, r(s, a, s&lt;sup&gt;;&lt;/sup&gt;). Note
that the transition probabilities labeling the arrows leaving an action node
always sum to &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 400.35pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.10 Give a table analogous
to to Table 3.1, but for p(s&lt;sup&gt;;&lt;/sup&gt;, r|s, a). It should have columns for
s, a, s&#39; r, and p(s&lt;sup&gt;;&lt;/sup&gt;, r|s, a), and a row for every 4-tuple for which
p(s&lt;sup&gt;;&lt;/sup&gt;, r|s, a) &amp;gt; &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.8pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l98 level1 lfo11;
tab-stops:37.5pt;background:transparent&#39;&gt;&lt;a name=bookmark49&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;3.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Value Functions&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Almost all reinforcement learning algorithms
involve estimating &lt;span class=afb&gt;value functions&lt;/span&gt;\A1\AA functions of states
(or of state-action pairs) that estimate &lt;span class=afb&gt;how good&lt;/span&gt; it is
for the agent to be in a given state (or how good it is to perform a given
action in a given state). The notion of \A1\B0how good\A1\B1 here is defined in terms of
future rewards that can be expected, or, to be precise, in terms of expected
return. Of course the rewards the agent can expect to receive in the future
depend on what actions it will take. Accordingly, value functions are defined
with respect to particular policies.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Recall that a policy, n, is a mapping from each
state, s G S, and action, a G A(s), to the probability n(a|s) of taking action
a when in state s. Informally, the &lt;span class=afb&gt;value&lt;/span&gt; of a state s
under a policy n, denoted &lt;span class=afb&gt;Vn&lt;/span&gt;(s), is the expected return
when starting in s and following n thereafter. For MDPs, we can define v^(s)
formally as&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection58&gt;

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&lt;div class=WordSection59&gt;

&lt;p class=153 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.75pt;
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&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
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background:transparent&#39;&gt;&lt;span lang=EN-US&gt;where E^[-] denotes the expected value
of a random variable given that the agent follows policy n, and t is any time
step. Note that the value of the terminal state, if any, is always zero. We
call the function &lt;span class=afb&gt;v&lt;sub&gt;n&lt;/sub&gt;&lt;/span&gt; the &lt;span class=afb&gt;state-value
function for policy&lt;/span&gt; n.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
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a), as the expected return starting from s, taking the action a, and thereafter
following policy n:&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection61&gt;

&lt;p class=153 style=&#39;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=1595pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;.k&lt;/span&gt;&lt;/span&gt;&lt;span
class=150pt&gt;&lt;span lang=EN-US&gt;=0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection62&gt;

&lt;p class=4f style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.25pt;
margin-left:1.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=41&gt;&lt;span lang=EN-US style=&#39;font-style:normal&#39;&gt;We call
qn the &lt;/span&gt;&lt;/span&gt;&lt;span class=44&gt;&lt;span lang=EN-US&gt;action-value function for
policy&lt;/span&gt;&lt;/span&gt;&lt;span class=41&gt;&lt;span lang=EN-US style=&#39;font-style:normal&#39;&gt;
n.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The value functions and can be estimated from
experience. For example, if an agent follows policy n and maintains an average,
for each state encountered, of the actual returns that have followed that
state, then the average will converge to the state\A1\AFs value, (s), as the number
of times that state is encountered approaches infinity. If separate averages are
kept for each action taken in a state, then these aver&amp;shy;ages will similarly
converge to the action values, q^(s, a). We call estimation methods of this
kind &lt;span class=afb&gt;Monte Carlo methods&lt;/span&gt; because they involve averaging
over many random samples of actual returns. These kinds of methods are
presented in Chapter 5. Of course, if there are very many states, then it may
not be practical to keep separate averages for each state individually.
Instead, the agent would have to maintain v^ and qn as parameterized functions
(with fewer parameters than states) and adjust the parameters to better match
the observed returns. This can also produce accu&amp;shy;rate estimates, although much
depends on the nature of the parameterized function approximator. These
possibilities are discussed in the second part of the book.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;A fundamental property of value functions used throughout
reinforcement learning and dynamic programming is that they satisfy particular
recursive relationships. For any policy n and any state s, the following
consistency condition holds between the value of s and the value of its
possible successor states:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.4pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;n(s) == En[Gi | Si = s]&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;=En[Ri&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US
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lang=EN-US&gt; | Si = s]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.4pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;=[&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(a|s)[[p(s&#39;,r|s,a) &lt;span class=afb&gt;r&lt;/span&gt; + &lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;En&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ơʮ&lt;/span&gt;&lt;/span&gt;&lt;span
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class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ӽʮ&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=ZH-TW style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;= s&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.3pt;
margin-left:1.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
center 51.4pt;background:transparent&#39;&gt;&lt;span class=44&gt;&lt;span lang=EN-US&gt;a&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;s&lt;sup&gt;!&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=41&gt;&lt;span lang=EN-US style=&#39;font-style:normal&#39;&gt; r&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.8pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;=^ n(a|s^ ^p(s&#39;,r|s,a) r + YVn(s&#39;) , Vs G S,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.75pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
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background:transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;span
class=-2pt&gt;s,&lt;/span&gt;&lt;/span&gt;&lt;span class=-2pt&gt;\A3\AC&lt;span lang=EN-US&gt;r&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;where it is implicit that the actions, a, are
taken from the set A(s), the next states, s&#39;, are taken from the set S (or from
S&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;in the case of an
episodic problem), and the rewards, r, are taken from the set R. Note also how
in the last equation we have merged the two sums, one over all the values of s&lt;sup&gt;&#39;&lt;/sup&gt;
and the other over all values of r, into one sum over all possible values of
both. We will use this kind of merged sum often to simplify formulas. Note how
the final expression can be read very easily as an expected value. It is really
a sum over all values of the three variables, a, s&lt;sup&gt;&#39;&lt;/sup&gt;, and r. For each
triple, we compute its probability, n(a|s)p(s&#39;, r|s, a), weight the quantity in
brackets by that probability, then sum over all possibilities to get an expected
value.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Equation (3.14) is the &lt;span class=afb&gt;Bellman
equation for&lt;/span&gt; Vn. It expresses a relationship between the value of a
state and the values of its successor states. Think of looking ahead from one
state to its possible successor states, as suggested by Figure 3.4 (left). Each
open circle represents a state and each solid circle represents a state-action
pair. Starting from state s, the root node at the top, the agent could take any
of some set of actions\A1\AAthree are shown in Figure 3.4 (left). From each of
these, the environment could respond with one of several next states, s&lt;sup&gt;&#39;&lt;/sup&gt;,
along with a reward,&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:66.0pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=88 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=88 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:66.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_10&#34; o:spid=&#34;_x0000_i1113&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image12&#34;
   style=&#39;width:228.75pt;height:66pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image014.png&#34;
    o:title=&#34;image12&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=afffff8 align=left style=&#39;text-align:left;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-height:66.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US&gt;Figure 3.4: Backup diagrams for v^
  and q^.&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:21.65pt;margin-right:1.0pt;margin-bottom:
0cm;margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;r. The Bellman equation (3.14) averages over all
the possibilities, weighting each by its probability of occurring. It states
that the value of the start state must equal the (discounted) value of the
expected next state, plus the reward expected along the way.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The value function Vn is the unique solution to its Bellman
equation. We show in subsequent chapters how this Bellman equation forms the
basis of a number of ways to compute, approximate, and learn v[ We call
diagrams like those shown in Figure 3.4 &lt;span class=afb&gt;backup diagrams&lt;/span&gt;
because they diagram relationships that form the basis of the update or &lt;span
class=afb&gt;backup&lt;/span&gt; operations that are at the heart of reinforcement
learning methods. These operations transfer value information &lt;span class=afb&gt;back&lt;/span&gt;
to a state (or a state\A1\AA action pair) from its successor stares (or state\A1\AAaction
pairs). We use backup diagrams throughout the book to provide graphical
summaries of the algorithms we discuss. (Note that unlike transition graphs,
the state nodes of backup diagrams do not necessarily represent distinct
rtates; for example, a state might be its own successor. We also omit explicit
arrowheads because time always flows downward in a backup diagram.)&lt;/span&gt;&lt;/p&gt;

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    transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;
    letter-spacing:0pt&#39;&gt;Figure 3.5: Gridworld example: exceptional reward
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    (right).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Example 3.8, Gridworld Figure 3.5 (left) shows a
rectangular gridworld repre&amp;shy;sentation of a simple finite MDP. The cells of the
grid correspond to the states of the environment. At each cell, four actions
are possible: north, soutli&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:
11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\AC&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;east&lt;/span&gt;\A3\AC&lt;span
lang=EN-US&gt;and west, sehich deterministically cause the agent to move one cell &lt;sup&gt;f&lt;/sup&gt;n
the respective di&amp;shy;rection one the grid. Actions that would take the agent off
the grid leave its location unchanged, but also result in a reward of \A1\AA1. Other
actions result in ee reward of 0, except those that move the agent cut of the
special states A and B. From st ate A, all four aetions yield a reward of &lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;10 &lt;/span&gt;&lt;span lang=EN-US&gt;and take the ageng
to A&#39; From state B, all actions yield a reward of &lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;5 and take the agent
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&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.0pt;
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background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Suppose the agent selects all four
actions with equal probability in all states. Figure 3.5 (right) shows the
value function, &lt;span class=afb&gt;Vn&lt;/span&gt;, for this policy, for the discounted
reward case with Y = 0.9. This value function was computed by solving the
system of linear equations (3.14). Notice the negative values near the lower
edge; these are the result of the high probability of hitting the edge of the
grid there under the random policy. State A is the best state to be in under
this policy, but its expected return is less than 10, its immediate reward,
because from A the agent is taken to A&#39;, from which it is likely to run into
the edge of the grid. State B, on the other hand, is valued more than 5, its
immediate reward, because from B the agent is taken to B&#39;, which has a positive
value. From B&#39; the expected penalty (negative reward) for possibly running into
an edge is more than compensated for by the expected gain for possibly
stumbling onto A or B.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

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    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;Figure 3.6: A golf example: the
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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Example 3.9: Golf To formulate playing a hole of
golf as a reinforcement learning task, we count a penalty (negative reward) of &lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;\A1\AA1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; for each stroke until we hit the ball into the hole. The state is
the location of the ball. The value of a state is the negative of the number of
strokes to the hole from that location. Our actions are how we aim and swing at
the ball, of course, and which club we select. Let us take&lt;/span&gt;&lt;/p&gt;

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right 400.6pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;the former as given and
consider just the choice of club, which we assume is either a putter or a
driver. The upper part of Figure 3.6 shows a possible state-value function,&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;putt(s), for the policy that
always uses the putter. The terminal state &lt;span class=afb&gt;in-the-hole &lt;/span&gt;has
a value of 0. From anywhere on the green we assume we can make a putt; these
states have value \A1\AA1. Off the green we cannot reach the hole by putting, and
the value is greater. If we can reach the green from a state by putting, then
that state must have value one less than the green\A1\AFs value, that is, \A1\AA2. For
simplicity, let us assume we can putt very precisely and deterministically, but
with a limited range. This gives us the sharp contour line labeled \A1\AA2 in the
figure; all locations between that line and the green require exactly two
strokes to complete the hole. Similarly, any location within putting range of
the \A1\AA2 contour line must have a value of \A1\AA3, and so on to get all the contour
lines shown in the figure. Putting doesn\A1\AFt get us out of sand traps, so they
have a value of \A1\AA&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. Overall, it takes us six strokes to
get from the tee to the hole by putting.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 400.15pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.11 What is the Bellman
equation for action values, that is, for q^? It must give the action value
q^(s, a) in terms of the action values, q^(s&#39;, a&#39;), of possible successors to
the state-action pair (s, a). As a hint, the backup diagram corresponding to
this equation is given in Figure 3.4 (right). Show the sequence of equations
analogous to (3.14), but for action values.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 400.15pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.12 The Bellman equation
(3.14) must hold for each state for the value function Vn shown in Figure 3.5
(right). As an example, show numerically that this equation holds for the
center state, valued at +0.7, with respect to its four neighboring states,
valued at +2.3, +0.4, \A1\AA0.4, and +0.7. (These numbers are accurate only to one
decimal place.)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 400.15pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.13 In the gridworld
example, rewards are positive for goals, negative for running into the edge of
the world, and zero the rest of the time. Are the signs of these rewards
important, or only the intervals between them? Prove, using (3.2), that adding
a constant c to all the rewards adds a constant, v&lt;sub&gt;c&lt;/sub&gt;, to the values
of all states, and thus does not affect the relative values of any states under
any policies. What is v&lt;sub&gt;c&lt;/sub&gt; in terms of c and &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;?&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Exercise 3.14 Now consider adding a constant c to all the rewards in
an episodic task, such as maze running. Would this have any effect, or would it
leave the task unchanged as in the continuing task above? Why or why not? Give
an example. \A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.1pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 400.15pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.15 The value of a state
depends on the values of the actions possible in that state and on how likely
each action is to be taken under the current policy. We can think of this in
terms of a small backup diagram rooted at the state and considering each
possible action:&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=254 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;tab-stops:right 56.9pt center 139.5pt right 178.85pt 214.6pt center 221.3pt;
background:transparent&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_758&#34; o:spid=&#34;_x0000_s1638&#34;
 type=&#34;#_x0000_t75&#34; alt=&#34;image16&#34; style=&#39;position:absolute;left:0;text-align:left;
 margin-left:159.1pt;margin-top:10.8pt;width:120.95pt;height:35.05pt;z-index:251688746;
 visibility:visible;mso-wrap-style:square;mso-width-percent:0;
 mso-height-percent:0;mso-wrap-distance-left:5pt;mso-wrap-distance-top:0;
 mso-wrap-distance-right:5pt;mso-wrap-distance-bottom:0;
 mso-position-horizontal:absolute;mso-position-horizontal-relative:margin;
 mso-position-vertical:absolute;mso-position-vertical-relative:text;
 mso-width-percent:0;mso-height-percent:0;mso-width-relative:page;
 mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image018.png&#34;
  o:title=&#34;image16&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;taken wit^&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;_&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;A
.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;^&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=25CenturySchoolbook&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;V&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=25MingLiU&gt;&lt;span
lang=ZH-TW style=&#39;font-size:9.5pt;mso-ansi-language:ZH-TW&#39;&gt;\A2\C8&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=254 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;probability ^(ajs)&lt;/span&gt;&lt;/p&gt;

&lt;p class=262 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:17.15pt;
margin-left:12.0pt;line-height:5.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=260pt&gt;&lt;span lang=EN-US&gt;-q-K&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; (s,a)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Give the equation corresponding to this intuition
and diagram for the value at the root node, Vn(s), in terms of the value at the
expected leaf node, q^(s, a), given&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection63&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;St &lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;= &lt;/span&gt;&lt;span
lang=EN-US&gt;s. This equation should include an expectation conditioned on
following the policy, n. Then give a second equation in which the expected
value is written out explicitly in terms of n(a|s) such that no expected value
notation appears in the equation.&lt;/span&gt;&lt;/p&gt;

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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
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  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
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    &lt;p class=118 style=&#39;line-height:4.5pt;mso-line-height-rule:exactly;
    tab-stops:right dashed 57.35pt;background:transparent&#39;&gt;&lt;span lang=EN-US
    style=&#39;letter-spacing:-.5pt&#39;&gt;JT-&lt;span style=&#39;mso-tab-count:1 dashed&#39;&gt;------------- &lt;/span&gt;&lt;/span&gt;&lt;span
    class=11Batang&gt;&lt;span lang=EN-US style=&#39;font-size:4.0pt;letter-spacing:0pt&#39;&gt;Qn&lt;/span&gt;&lt;/span&gt;&lt;span
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&lt;/v:shape&gt;&lt;v:shape id=&#34;Picture_x0020_756&#34; o:spid=&#34;_x0000_s1636&#34; type=&#34;#_x0000_t75&#34;
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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Exercise 3.16 The value of an action, q^(s, a),
depends on the expected next reward and the expected sum of the remaining
rewards. Again we can think of this in terms of a small backup diagram, this
one rooted at an action (state-action pair) and branching to the possible next
states:&lt;/span&gt;&lt;/p&gt;

&lt;p class=95 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;line-height:7.0pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=90&gt;&lt;span lang=EN-US&gt;expected&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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line-height:7.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;v:shape
 id=&#34;Text_x0020_Box_x0020_755&#34; o:spid=&#34;_x0000_s1635&#34; type=&#34;#_x0000_t202&#34;
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  &lt;![if !mso]&gt;
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   &lt;tr&gt;
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    &lt;p class=291 style=&#39;margin-left:5.0pt;line-height:4.5pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=29Batang&gt;&lt;span lang=EN-US
    style=&#39;font-size:4.0pt;letter-spacing:0pt&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span
    class=29MingLiU&gt;&lt;span style=&#39;font-size:4.0pt;mso-ansi-language:ZH-TW&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;span
    lang=EN-US style=&#39;letter-spacing:-.5pt&#39;&gt;(s)&lt;/span&gt;&lt;/p&gt;
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  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=90&gt;&lt;span lang=EN-US&gt;rewards&lt;sup&gt;-&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Give the equation corresponding to this intuition and diagram for
the action value, qn(s, a), in terms of the expected next reward, Ri&lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, and the expected
next state value, Vn (Si&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;), given that Si = s and Ai = a. This equation should include an
expectation but &lt;span class=afb&gt;not&lt;/span&gt; one conditioned conditioned on
following the policy. Then give a second equation, writing out the expected
value explicitly in terms of p(s&lt;sup&gt;&#39;&lt;/sup&gt;, r|s, a) defined by (3.8), such
that no expected value notation appears in the equation. \A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=271 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l98 level1 lfo11;tab-stops:37.2pt;background:transparent&#39;&gt;&lt;a
name=bookmark50&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;3.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Optimal Value Functions&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Solving a reinforcement learning task means, roughly, finding a
policy that achieves a lot of reward over the long run. For finite MDPs, we can
precisely define an optimal policy in the following way. Value functions define
a partial ordering over policies. A policy n is defined to be better than or
equal to a policy n&#39; if its expected return is greater than or equal to that of
n&#39; for all states. In other words, n &amp;gt; n&#39; if and only if Vn(s) &amp;gt; Vn, (s)
for all s G S. There is always at least one policy that is better than or equal
to all other policies. This is an &lt;span class=afb&gt;optimal policy.&lt;/span&gt;
Although there may be more than one, we denote all the optimal policies by n^.
They share the same state-value function, called the &lt;span class=afb&gt;optimal
state-value function&lt;/span&gt;, denoted V^, and defined as&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:right 398.7pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;V^(s) == max
Vn (s),&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(3.15)&lt;/span&gt;&lt;/p&gt;

&lt;p class=282 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.0pt;
margin-left:73.0pt;line-height:11.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;آ&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:1.25pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;for all s G S.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Optimal policies also share
the same &lt;span class=afb&gt;optimal action-value function,&lt;/span&gt; denoted q^, and
defined as&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:right 398.7pt;background:transparent&#39;&gt;&lt;span class=afb&gt;&lt;span
lang=EN-US&gt;q*&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(s, a) == maxq^(s, a),&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(3.16)&lt;/span&gt;&lt;/p&gt;

&lt;p class=282 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.35pt;
margin-left:84.0pt;line-height:11.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;آ&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:7.55pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;for all s G S and a G A(s). For the state-action pair (s, a), this
function gives the expected return for taking action a in state s and
thereafter following an optimal policy. Thus, we can write &lt;span class=afb&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiU4&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\B1\BE&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;in terms of V&lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ľ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;as follows:&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;a name=bookmark51&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\81\96&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(s,a)= E[Ri&lt;/span&gt;&lt;/a&gt;&lt;span style=&#39;mso-bookmark:bookmark51&#39;&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; +&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark51&#39;&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\A3\AC&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark51&#39;&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;*&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark51&#39;&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;\B5\C4ʮ&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark51&#39;&gt;&lt;span
class=9pt2&gt;&lt;span lang=ZH-TW style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark51&#39;&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;)
&lt;/span&gt;&lt;span lang=EN-US&gt;| Si = s, Ai = a]&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br
clear=all style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 3.10: Optimal Value Functions for Golf
The lower part of Figure 3.6 shows the contours of a possible optimal
action-value function q^(s, driver). These are the values of each state if we
first play a stroke with the driver and afterward select either the driver or
the putter, whichever is better. The driver enables us to hit the ball farther,
but with less accuracy. We can reach the hole in one shot using the driver only
if we are already very close; thus the &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;\A1\AA1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; contour
for &lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\81\96&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(s, driver) covers only a small portion of the green. If we have two
strokes, however, then we can reach the hole from much farther away, as shown
by the \A1\AA2 contour. In this case we don\A1\AFt have to drive all the way to within
the small &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;\A1\AA1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; contour, but only to anywhere on the green; from there we can use
the putter. The optimal action-value function gives the values after committing
to a particular &lt;span class=afb&gt;first&lt;/span&gt; action, in this case, to the
driver, but afterward using whichever actions are best. The \A1\AA3 contour is still
farther out and includes the starting tee. From the tee, the best sequence of
actions is two drives and one putt, sinking the ball in three strokes.&lt;/span&gt;&lt;/p&gt;

&lt;p class=302 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:.55pt;
margin-left:0cm;line-height:13.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
center 44.45pt right 254.9pt center 281.8pt 315.15pt right 402.6pt;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Because v&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;ľ&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span
lang=EN-US&gt;is the value function for a policy, it must satisfy the
self-consistency condition given by the Bellman equation for state values
(3.14). Because it is the optimal value function, however, v^\A1\AFs consistency
condition can be written in a special form without reference to any specific
policy. This is the Bellman equation for v*, or the&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;span class=afb&gt;Bellman optimality
equation&lt;/span&gt;. Intuitively,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;the&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Bellman&lt;span style=&#39;mso-tab-count:
1&#39;&gt; &lt;/span&gt;optimality&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;equation&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
center 56.2pt left 65.1pt right 254.9pt center 340.85pt right 402.6pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;expresses&lt;span style=&#39;mso-tab-count:
1&#39;&gt; &lt;/span&gt;the&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;fact
that the value of a state under&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;an
optimal policy&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;must&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;equal the&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;expected return for the best action from that state:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;v*(s) =
max qn (s, a)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.85pt;
margin-left:58.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afb&gt;&lt;span lang=EN-US&gt;a&amp;pound;A&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; (s)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:210.0pt;margin-bottom:2.25pt;
margin-left:74.0pt;text-indent:-15.0pt;line-height:4.8pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=3pt1&gt;&lt;span lang=EN-US&gt;\A1\AA&lt;sup&gt;max[G&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; | &lt;span class=afb&gt;&lt;sup&gt;S&lt;/sup&gt;t&lt;/span&gt; \A1\AA &lt;sup&gt;s&lt;/sup&gt;, &lt;sup&gt;A&lt;/sup&gt;t
\A1\AA &lt;sup&gt;a]&lt;/sup&gt; a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:58.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:right 402.6pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=maxEn,[Rt+i +
YGt+i | &lt;span class=afb&gt;St&lt;/span&gt; = s, At = a]&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(by
(3.3))&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.15pt;
margin-left:74.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:58.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:right 402.6pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=maxE[Rt+i +
Yv*(St+i) | &lt;span class=afb&gt;St&lt;/span&gt; = s, At = a]&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(3.18)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.05pt;
margin-left:74.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:58.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:right 402.6pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=max Ep(s&#39;,
r|s, a) [r + &lt;span class=aff6&gt;yv*(s&#39;)] .&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(3.19)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:58.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;aGA (s)&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
1.45pt;margin-left:96.0pt;text-align:left;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=44&gt;&lt;span lang=EN-US&gt;s&#39; ,r&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.2pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The last two equations are two forms of the
Bellman optimality equation for v*. The Bellman optimality equation for &lt;span
class=afb&gt;q*&lt;/span&gt; is&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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transparent&#39;&gt;&lt;span lang=EN-US&gt;The backup diagrams in Figure 3.7 show
graphically the spans of future states and actions considered in the Bellman
optimality equations for v* and q*. These are the same as the backup diagrams
for v^ and q^ except that arcs have been added at the agent\A1\AFs choice points to
represent that the maximum over that choice is taken rather than the expected
value given some policy. Figure 3.7 (left) graphically represents the Bellman
optimality equation (3.19).&lt;/span&gt;&lt;/p&gt;

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    exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(&lt;sup&gt;v&lt;/sup&gt;*)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=32MingLiU&gt;&lt;span style=&#39;font-size:4.0pt&#39;&gt;\A1\A2&lt;/span&gt;&lt;/span&gt;&lt;span
class=32Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;f&lt;/span&gt;&lt;/sup&gt;&lt;/p&gt;

&lt;p class=333 style=&#39;tab-stops:right 218.65pt;background:transparent&#39;&gt;\A9\96\A9\96\A9\96\A9\96\A9\96\A9\96&lt;span
class=33AngsanaUPC&gt;&lt;span lang=EN-US style=&#39;font-size:14.5pt&#39;&gt;#&amp;#8226;&amp;#8226; &amp;#8226;&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=33CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&amp;#8226;()!&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:10.0pt;text-indent:0cm;line-height:24.95pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Figure
3.7: Backup diagrams for v^ and q*&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection67&gt;

&lt;p class=MsoNormal style=&#39;margin-top:3.05pt;margin-right:0cm;margin-bottom:
3.05pt;margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection68&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For finite MDPs, the Bellman
optimality equation (3.19) has a unique solution independent of the policy. The
Bellman optimality equation is actually a system of equations, one for each
state, so if there are &lt;span class=afb&gt;N&lt;/span&gt; states, then there are &lt;span
class=afb&gt;N&lt;/span&gt; equations in &lt;span class=afb&gt;N&lt;/span&gt; unknowns. If the
dynamics of the environment are known (p(s&#39;, r|s, a)), then in principle one
can solve this system of equations for v* using any one of a variety of methods
for solving systems of nonlinear equations. One can solve a related set of
equations for q*.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Once one has v*, it is
relatively easy to determine an optimal policy. For each state s, there will be
one or more actions at which the maximum is obtained in the Bellman optimality
equation. Any policy that assigns nonzero probability only to these actions is
an optimal policy. You can think of this as a one-step search. If you have the
optimal value function, v*, then the actions that appear best after a one-step
search will be optimal actions. Another way of saying this is that any policy
that is &lt;span class=afb&gt;greedy&lt;/span&gt; with respect to the optimal evaluation
function v* is an opti&amp;shy;mal policy. The term greedy is used in computer science
to describe any search or decision procedure that selects alternatives based
only on local or immediate con&amp;shy;siderations, without considering the possibility
that such a selection may prevent future access to even better alternatives.
Consequently, it describes policies that select actions based only on their
short-term consequences. The beauty of v* is that if one uses it to evaluate the
short-term consequences of actions\A1\AAspecifically, the one-step consequences\A1\AAthen
a greedy policy is actually optimal in the long-term sense in which we are
interested because v* already takes into account the reward consequences of all
possible future behavior. By means of v*, the optimal expected long-term return
is turned into a quantity that is locally and immediately available for each
state. Hence, a one-step-ahead search yields the long-term optimal actions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Having q* makes choosing
optimal actions still easier. With q*, the agent does not even have to do a
one-step-ahead search: for any state s, it can simply find any action that
maximizes q*(s, a). The action-value function effectively caches the results of
all one-step-ahead searches. It provides the optimal expected long-term return
as a value that is locally and immediately available for each state-action
pair. Hence, at the cost of representing a function of state-action pairs,
instead of just of states, the optimal action-value function allows optimal
actions to be selected without having to know anything about possible successor
states and their values, that is, without having to know anything about the
environment\A1\AFs dynamics.&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 3.11: Bellman Optimality
Equations for the Recycling Robot Us&amp;shy;ing (3.19), we can explicitly give the
Bellman optimality equation for the recycling robot example. To make things
more compact, we abbreviate the states high and low, and the actions search,
wait, and recharge respectively by h, l, s, w, and re. Since there are only two
states, the Bellman optimality equation consists of two equations. The equation
for V&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ľ&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(h) can be written as follows:&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection69&gt;

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     letter-spacing:0pt&#39;&gt;(s + Y[aV*(h) + &lt;/span&gt;&lt;/span&gt;&lt;span class=0ptExact1&gt;&lt;span
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 &lt;/v:shape&gt;&lt;/o:wrapblock&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection70&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Following the same procedure for V&lt;/span&gt;&lt;span class=12pt&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;* &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=12pt&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;l&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) yields the equation&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:92.0pt;text-indent:0cm;line-height:12.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afb&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;¬&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(s \A1\AA 3(1 \A1\AA&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;¬&lt;/span&gt;&lt;/span&gt;\A3\A9&lt;span
lang=EN-US&gt;+ Y[(1 \A1\AA ^)V&lt;/span&gt;&lt;span class=12pt&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;*&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=12pt&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;h&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) + ^V&lt;/span&gt;&lt;span class=12pt&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;*&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;l&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;
mso-list:l27 level1 lfo12;tab-stops:33.75pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=12pt&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;*&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=12pt&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;l&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) = max &lt;/span&gt;&lt;span class=12pt&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;&amp;lt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;r&lt;sub&gt;H&lt;/sub&gt; + YV&lt;/span&gt;&lt;span
class=12pt&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;*&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;l&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;),&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.75pt;
margin-left:92.0pt;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afb&gt;&lt;span lang=EN-US&gt;{&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; Y&lt;sup&gt;V&lt;/sup&gt;&lt;/span&gt;&lt;span class=12pt&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;*&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;span
class=12pt&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;h&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 400.6pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For any choice of (s, r&lt;sub&gt;w&lt;/sub&gt;,
a, &lt;span class=afb&gt;P&lt;/span&gt;, and &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, with 0 &amp;lt; &lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &amp;lt; 1, 0 &amp;lt; a, ^ &amp;lt; 1, there is exactly one pair of numbers, V&lt;/span&gt;&lt;span
class=12pt&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;*&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;h&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) and V&lt;/span&gt;&lt;span class=12pt&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;*&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;l&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;), that
simultaneously satisfy these two nonlinear equations.&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.3pt;
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      background:white;padding:0cm .5pt 0cm .5pt;height:16.55pt;mso-height-rule:
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  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;7T,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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   &lt;/tr&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Example 3.12: Solving the Gridworld Suppose we solve
the Bellman equa&amp;shy;tion for V&lt;/span&gt;&lt;span class=12pt&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;* &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;for the simple grid
task introduced in Example 3.8 and shown again in Figure 3.8 (left). Recall
that state A is followed by a reward of +10 and transition to state A&lt;/span&gt;&lt;span
class=12pt&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;&#39;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, while state B is followed by a reward of +5 and transition to
state B&lt;/span&gt;&lt;span class=12pt&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;&#39;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. Figure 3.8 (middle) shows the optimal value function, and Figure
3.8 (right) shows the corresponding optimal policies. Where there are multiple
arrows in a cell, any of the corresponding actions is optimal.&lt;/span&gt;&lt;/p&gt;

&lt;div align=center&gt;

&lt;table class=MsoNormalTable border=0 cellspacing=0 cellpadding=0
 style=&#39;border-collapse:collapse;mso-table-layout-alt:fixed;mso-table-overlap:
 never;mso-padding-alt:0cm .5pt 0cm .5pt&#39;&gt;
 &lt;tr style=&#39;mso-yfti-irow:0;mso-yfti-firstrow:yes;height:16.55pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.55pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:9.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=Candara&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;22&lt;/span&gt;&lt;/span&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;.C&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.55pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;24.4&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.55pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;22.C&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.55pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;19.4&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.55pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;17.5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=29 valign=top style=&#39;width:22.1pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:16.55pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:185.3pt;
  mso-element-frame-hspace:49.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=21 valign=top style=&#39;width:16.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.55pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;~&amp;#9658;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.55pt;mso-height-rule:
  exactly&#39;&gt;
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  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  class=4pt0&gt;&lt;span lang=EN-US style=&#39;font-size:4.0pt&#39;&gt;+&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.55pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook5&gt;&lt;span lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;4&lt;/span&gt;&lt;/span&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;~&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.55pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:185.3pt;
  mso-element-frame-hspace:49.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.55pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
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  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;&amp;lt;~&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:1;height:16.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;19.8&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;22.C&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;19.8&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;17.8&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;16.0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=29 valign=top style=&#39;width:22.1pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:16.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:185.3pt;
  mso-element-frame-hspace:49.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=21 valign=top style=&#39;width:16.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:4.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=4pt0&gt;&lt;span lang=EN-US style=&#39;font-size:4.0pt&#39;&gt;U&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:4.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=4pt0&gt;&lt;span lang=EN-US style=&#39;font-size:4.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:185.3pt;
  mso-element-frame-hspace:49.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:5.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook5&gt;&lt;span lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;4&lt;/span&gt;&lt;/span&gt;&lt;span
  class=4pt0&gt;&lt;span lang=EN-US style=&#39;font-size:4.0pt&#39;&gt;\A1\AA\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.55pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:5.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook5&gt;&lt;span lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;4&lt;/span&gt;&lt;/span&gt;&lt;span
  class=ArialUnicodeMS2&gt;&lt;span lang=EN-US style=&#39;font-size:4.0pt&#39;&gt;\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:2;height:16.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;17.8&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;19.8&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;17.8&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;16.0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;14.4&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=29 valign=top style=&#39;width:22.1pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:16.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:185.3pt;
  mso-element-frame-hspace:49.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=21 valign=top style=&#39;width:16.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:4.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=4pt0&gt;&lt;span lang=EN-US style=&#39;font-size:4.0pt&#39;&gt;u&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
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  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=4pt0&gt;&lt;span lang=EN-US style=&#39;font-size:4.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:185.3pt;
  mso-element-frame-hspace:49.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.3pt;mso-height-rule:
  exactly&#39;&gt;
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  mso-element-frame-hspace:49.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:185.3pt;
  mso-element-frame-hspace:49.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.1pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;16.C&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.1pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;17.8&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.1pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;16.C&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.1pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;14.4&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.1pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;13.0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=29 valign=top style=&#39;width:22.1pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:16.1pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:185.3pt;
  mso-element-frame-hspace:49.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:4.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=4pt0&gt;&lt;span lang=EN-US style=&#39;font-size:4.0pt&#39;&gt;u&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.1pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:4.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=MingLiUf&gt;&lt;span style=&#39;font-size:4.0pt;mso-ansi-language:ZH-TW&#39;&gt;\B8\F6&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.1pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:185.3pt;
  mso-element-frame-hspace:49.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:16.1pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:185.3pt;
  mso-element-frame-hspace:49.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.55pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:16.1pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:185.3pt;
  mso-element-frame-hspace:49.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:4;mso-yfti-lastrow:yes;height:16.8pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:16.8pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;14.4&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:16.8pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;16.C&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:16.8pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;14.4&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:16.8pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;13.0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:16.8pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:6.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;11.7&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=29 valign=top style=&#39;width:22.1pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:16.8pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:185.3pt;
  mso-element-frame-hspace:49.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=21 valign=top style=&#39;width:16.1pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:16.8pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:4.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=4pt0&gt;&lt;span lang=EN-US style=&#39;font-size:4.0pt&#39;&gt;u&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
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  &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:4.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:185.3pt;mso-element-frame-hspace:49.45pt;mso-element-wrap:
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  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=4pt0&gt;&lt;span lang=EN-US style=&#39;font-size:4.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:185.3pt;
  mso-element-frame-hspace:49.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=22 valign=top style=&#39;width:16.3pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:16.8pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:185.3pt;
  mso-element-frame-hspace:49.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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  &lt;td width=22 valign=top style=&#39;width:16.55pt;border:solid windowtext 1.0pt;
  mso-border-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:16.8pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:185.3pt;
  mso-element-frame-hspace:49.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=343 style=&#39;margin-top:10.1pt;margin-right:0cm;margin-bottom:13.15pt;
margin-left:1.0pt;line-height:8.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;a name=bookmark52&gt;&lt;span lang=EN-US&gt;Gridworld&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 align=center style=&#39;margin-bottom:12.6pt;text-align:center;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Figure 3.8: Optimal solutions to the gridworld example.&lt;/span&gt;&lt;/p&gt;

&lt;p class=350 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.45pt;
margin-left:0cm;line-height:12.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Explicitly solving the Bellman optimality equation provides one
route to finding an optimal policy, and thus to solving the reinforcement
learning problem. However,&lt;br clear=all style=&#39;page-break-before:always&#39;&gt;
this solution is rarely directly useful. It is akin to an exhaustive search,
looking ahead at all possibilities, computing their probabilities of occurrence
and their desirabili&amp;shy;ties in terms of expected rewards. This solution relies on
at least three assumptions that are rarely true in practice: (&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) we accurately know the dynamics of the envi&amp;shy;ronment; (&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) we have enough computational resources to complete the computation
of the solution; and (3) the Markov property. For the kinds of tasks in which
we are interested, one is generally not able to implement this solution exactly
because various combinations of these assumptions are violated. For example,
although the first and third assumptions present no problems for the game of
backgammon, the second is a major impediment. Since the game has about 10&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;20&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; states, it would take thousands of years on today\A1\AFs fastest
computers to solve the Bellman equation for v^, and the same is true for
finding q^. In reinforcement learning one typically has to settle for
approximate solutions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Many different decision-making methods can be viewed as ways of
approximately solving the Bellman optimality equation. For example, heuristic
search methods can be viewed as expanding the right-hand side of (3.19) several
times, up to some depth, forming a \A1\B0tree\A1\B1 of possibilities, and then using a
heuristic evaluation function to approximate v&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;ľ&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span
lang=EN-US&gt;at the \A1\B0leaf\A1\B1 nodes. (Heuristic search methods such as A* are almost
always based on the episodic case.) The methods of dynamic programming can be
related even more closely to the Bellman optimality equation. Many
reinforcement learning methods can be clearly understood as approximately
solving the Bellman optimality equation, using actual experienced transitions
in place of knowledge of the expected transitions. We consider a variety of
such methods in the following chapters.&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:3.2pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 398.55pt;background:transparent&#39;&gt;&lt;!--[if supportFields]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-element:field-begin&#39;&gt;&lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;TOC \o &amp;quot;1-5&amp;quot; \h \z &lt;span
style=&#39;mso-element:field-separator&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;span lang=EN-US&gt;Exercise
3.17 Draw or describe the optimal state-value function for the golf ex&amp;shy;ample.&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:5.95pt;
margin-left:0cm;line-height:13.2pt;mso-line-height-rule:exactly;tab-stops:right 398.55pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.18 Draw or describe the
contours of the optimal action-value function for putting, q*(s,putter), for
the golf example.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.25pt;
margin-left:0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 398.55pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.19 Give the Bellman
equation for q* for the recycling robot.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-end&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Exercise 3.20 Figure 3.8 gives the optimal value of the best state
of the gridworld as 24.4, to one decimal place. Use your knowledge of the
optimal policy and (3.2) to express this value symbolically, and then to
compute it to three decimal places. \A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:6.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 228.95pt;
background:transparent&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_740&#34; o:spid=&#34;_x0000_s1620&#34;
 type=&#34;#_x0000_t75&#34; alt=&#34;image19&#34; style=&#39;position:absolute;left:0;text-align:left;
 margin-left:252.1pt;margin-top:4.1pt;width:134.9pt;height:89.3pt;z-index:251700010;
 visibility:visible;mso-wrap-style:square;mso-width-percent:0;
 mso-height-percent:0;mso-wrap-distance-left:5pt;mso-wrap-distance-top:0;
 mso-wrap-distance-right:5pt;mso-wrap-distance-bottom:0;
 mso-position-horizontal:absolute;mso-position-horizontal-relative:margin;
 mso-position-vertical:absolute;mso-position-vertical-relative:text;
 mso-width-percent:0;mso-height-percent:0;mso-width-relative:page;
 mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image021.png&#34;
  o:title=&#34;image19&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Exercise 3.21 Consider the continuing MDP shown on
to the right. The only decision to be made is that in the top state, where two
actions are available, &lt;/span&gt;&lt;span class=ArialUnicodeMS3&gt;&lt;span lang=EN-US&gt;left
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;span class=ArialUnicodeMS3&gt;&lt;span
lang=EN-US&gt;right&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. The numbers show the rewards
that are received deterministically after each action. There are exactly two
deter&amp;shy;ministic policies, nieft and bright. What policy is optimal if &lt;span
class=aff6&gt;y&lt;/span&gt; \A1\AA 0? If &lt;span class=aff6&gt;y&lt;/span&gt; \A1\AA 0.9? If &lt;span
class=aff6&gt;y \A1\AA 0.5?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:7.4pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:right 398.55pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.22
Give an equation for v* in terms of q*.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Exercise 3.23 Give an equation for q* in terms of v* and the world\A1\AFs
dynamics,&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection71&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.2pt;
margin-left:1.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
right 400.6pt;background:transparent&#39;&gt;&lt;!--[if supportFields]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-element:field-begin&#39;&gt;&lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;TOC \o &amp;quot;1-5&amp;quot; \h \z &lt;span
style=&#39;mso-element:field-separator&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;span lang=EN-US&gt;p(s&#39;,
r|s, a).&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.05pt;
margin-left:1.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
right 400.6pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.24 Give an
equation for n* in terms of q*.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:30.55pt;
margin-left:1.0pt;line-height:13.7pt;mso-line-height-rule:exactly;tab-stops:
right 400.6pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 3.25 Give an
equation for n* in terms of v* and the world\A1\AFs dynamics, p(s&#39;, r|s, a).&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-end&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l98 level1 lfo11;
tab-stops:38.2pt;background:transparent&#39;&gt;&lt;a name=bookmark53&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;3.9&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Optimality and
Approximation&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;We have defined optimal value functions and
optimal policies. Clearly, an agent that learns an optimal policy has done very
well, but in practice this rarely happens. For the kinds of tasks in which we
are interested, optimal policies can be generated only with extreme
computational cost. A well-defined notion of optimality organizes the approach
to learning we describe in this book and provides a way to understand the
theoretical properties of various learning algorithms, but it is an ideal that
agents can only approximate to varying degrees. As we discussed above, even if
we have a complete and accurate model of the environment\A1\AFs dynamics, it is
usually not possible to simply compute an optimal policy by solving the Bellman
optimality equation. For example, board games such as chess are a tiny fraction
of human experience, yet large, custom-designed computers still cannot compute
the optimal moves. A critical aspect of the problem facing the agent is always
the computational power available to it, in particular, the amount of
computation it can perform in a single time step.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
center 90.3pt 152.8pt 221.8pt 273.9pt 320.8pt 352.1pt right 400.6pt;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The memory available is also an important constraint.
A large amount of memory is often required&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;to&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;build up approximations&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;of value&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;functions,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;policies,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;and&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;models.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
center 152.8pt 238.85pt 247.95pt 320.8pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In tasks with small,&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;finite
state sets, it is possible&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;to&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;form these&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;approximations
using&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;arrays or tables with one entry for each state
(or state-action pair). This we call the &lt;span class=afb&gt;tabular&lt;/span&gt; case,
and the corresponding methods we call tabular methods. In many cases of
practical interest, however, there are far more states than could possibly be
entries in a table. In these cases the functions must be approximated, using
some sort of more compact parameterized function representation.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Our framing of the reinforcement learning problem
forces us to settle for approxi&amp;shy;mations. However, it also presents us with some
unique opportunities for achieving useful approximations. For example, in
approximating optimal behavior, there may be many states that the agent faces
with such a low probability that selecting subop- timal actions for them has
little impact on the amount of reward the agent receives. Tesauro\A1\AFs backgammon
player, for example, plays with exceptional skill even though it might make
very bad decisions on board configurations that never occur in games against
experts. In fact, it is possible that TD-Gammon makes bad decisions for a large
fraction of the game\A1\AFs state set. The on-line nature of reinforcement learning
makes it possible to approximate optimal policies in ways that put more effort
into learning to make good decisions for frequently encountered states, at the
expense of less effort for infrequently encountered states. This is one key
property that dis&amp;shy;tinguishes reinforcement learning from other approaches to
approximately solving MDPs.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l98 level1 lfo11;
tab-stops:46.35pt;background:transparent&#39;&gt;&lt;a name=bookmark54&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;3.10&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Summary&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Let us summarize the elements of the
reinforcement learning problem that we have presented in this chapter.
Reinforcement learning is about learning from interaction how to behave in
order to achieve a goal. The reinforcement learning &lt;span class=afb&gt;agent&lt;/span&gt;
and its &lt;span class=afb&gt;environment&lt;/span&gt; interact over a sequence of discrete
time steps. The specification of their interface defines a particular task: the
&lt;span class=afb&gt;actions&lt;/span&gt; are the choices made by the agent; the &lt;span
class=afb&gt;states&lt;/span&gt; are the basis for making the choices; and the &lt;span
class=afb&gt;rewards&lt;/span&gt; are the basis for evaluating the choices. Everything
inside the agent is completely known and controllable by the agent; everything
outside is incompletely controllable but may or may not be completely known. A &lt;span
class=afb&gt;policy&lt;/span&gt; is a stochastic rule by which the agent selects actions
as a function of states. The agent\A1\AFs objective is to maximize the amount of
reward it receives over time.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The &lt;span class=afb&gt;return&lt;/span&gt; is the function
of future rewards that the agent seeks to maximize. It has several different
definitions depending upon the nature of the task and whether one wishes to &lt;span
class=afb&gt;discount&lt;/span&gt; delayed reward. The undiscounted formulation is
appropriate for &lt;span class=afb&gt;episodic tasks&lt;/span&gt;, in which the
agent\A1\AAenvironment interaction breaks naturally into &lt;span class=afb&gt;episodes&lt;/span&gt;;
the discounted formulation is appropriate for &lt;span class=afb&gt;continuing tasks&lt;/span&gt;,
in which the interaction does not naturally break into episodes but continues
without limit.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;An environment satisfies the &lt;span class=afb&gt;Markov
property&lt;/span&gt; if its state signal compactly sum&amp;shy;marizes the past without
degrading the ability to predict the future. This is rarely exactly true, but
often nearly so; the state signal should be chosen or constructed so that the
Markov property holds as nearly as possible. In this book we assume that this
has already been done and focus on the decision-making problem: how to decide
what to do as a function of whatever state signal is available. If the Markov
property does hold, then the environment is called a &lt;span class=afb&gt;Markov
decision process&lt;/span&gt; (MDP). A &lt;span class=afb&gt;finite MDP&lt;/span&gt; is an MDP
with finite state and action sets. Most of the current theory of reinforcement
learning is restricted to finite MDPs, but the methods and ideas apply more
generally.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;A policy\A1\AFs &lt;span class=afb&gt;value functions&lt;/span&gt;
assign to each state, or state\A1\AAaction pair, the expected return from that
state, or state\A1\AAaction pair, given that the agent uses the policy. The &lt;span
class=afb&gt;optimal value functions&lt;/span&gt; assign to each state, or state\A1\AAaction
pair, the largest expected return achievable by any policy. A policy whose
value functions are optimal is an &lt;span class=afb&gt;optimal policy&lt;/span&gt;.
Whereas the optimal value functions for states and state\A1\AAaction pairs are
unique for a given MDP, there can be many optimal policies. Any policy that is &lt;span
class=afb&gt;greedy&lt;/span&gt; with respect to the optimal value functions must be an
optimal policy. The &lt;span class=afb&gt;Bellman optimality equations&lt;/span&gt; are
special consistency conditions that the optimal value functions must satisfy
and that can, in principle, be solved for the optimal value functions, from
which an optimal policy can be determined with relative ease.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;A reinforcement learning problem can be posed in
a variety of different ways de&amp;shy;pending on assumptions about the level of
knowledge initially available to the agent. In problems of &lt;span class=afb&gt;complete
knowledge&lt;/span&gt;, the agent has a complete and accurate model of the
environment\A1\AFs dynamics. If the environment is an MDP, then such a model
consists of the one-step &lt;span class=afb&gt;transition probabilities&lt;/span&gt; and &lt;span
class=afb&gt;expected rewards&lt;/span&gt; for all states and their allowable actions.
In problems of &lt;span class=afb&gt;incomplete knowledge,&lt;/span&gt; a complete and
perfect model of the environment is not available.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Even if the agent has a
complete and accurate environment model, the agent is typically unable to
perform enough computation per time step to fully use it. The memory available
is also an important constraint. Memory may be required to build up accurate
approximations of value functions, policies, and models. In most cases of
practical interest there are far more states than could possibly be entries in
a table, and approximations must be made.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;A well-defined notion of optimality organizes the approach to
learning we describe in this book and provides a way to understand the
theoretical properties of various learning algorithms, but it is an ideal that
reinforcement learning agents can only ap&amp;shy;proximate to varying degrees. In
reinforcement learning we are very much concerned with cases in which optimal
solutions cannot be found but must be approximated in some way.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:36.0pt;text-indent:-36.0pt;line-height:13.0pt;mso-line-height-rule:
exactly;mso-pagination:lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark55&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Bibliographical and Historical
Remarks&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The reinforcement learning problem is
deeply indebted to the idea of Markov decision processes (MDPs) from the field
of optimal control. These historical influences and other major influences from
psychology are described in the brief history given in Chapter 1. Reinforcement
learning adds to MDPs a focus on approximation and incomplete information for
realistically large problems. MDPs and the reinforcement learning problem are
only weakly linked to traditional learning and decision-making problems in
artificial intelligence. However, artificial intelligence is now vigorously
exploring MDP formulations for planning and decision-making from a variety of
perspectives. MDPs are more general than previous formulations used in
artificial intelligence in that they permit more general kinds of goals and
uncertainty.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.2pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Our presentation of the reinforcement learning problem was
influenced by Watkins (1989).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l100 level1 lfo13;
tab-stops:35.75pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;3.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;The bioreactor example is based
on the work of Ungar (1990) and Miller and Williams (1992). The recycling robot
example was inspired by the can- collecting robot built by Jonathan Connell
(1989).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;3.3-4 The terminology of &lt;span class=afb&gt;episodic&lt;/span&gt; and &lt;span
class=afb&gt;continuing&lt;/span&gt; tasks is different from that usu&amp;shy;ally used in the
MDP literature. In that literature it is common to distinguish three types of
tasks: (&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) finite-horizon tasks, in which interaction terminates after a
particular &lt;span class=afb&gt;fixed&lt;/span&gt; number of time steps; (&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) indefinite-horizon tasks, in which interaction can last
arbitrarily long but must eventually terminate; and (3) infinite-horizon tasks,
in which interaction does not terminate. Our episodic and continuing tasks are
similar to indefinite-horizon and infinite- horizon tasks, respectively, but we
prefer to emphasize the difference in the nature of the interaction. This
difference seems more fundamental than the difference in the objective
functions emphasized by the usual terms. Often episodic tasks use an
indefinite-horizon objective function and continuing tasks an infinite-horizon
objective function, but we see this as a common coincidence rather than a
fundamental difference.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.15pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The pole-balancing example is from Michie and Chambers (1968) and
Barto, Sutton, and Anderson (1983).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:16.75pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:9.5pt;mso-line-height-rule:exactly;mso-list:l22 level1 lfo14;
tab-stops:33.6pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;3.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;For further discussion of the
concept of state, see Minsky (1967).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l22 level1 lfo14;
tab-stops:33.6pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;3.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;The theory of MDPs is treated
by, e.g., Bertsekas (2005), Ross (1983), White (1969), and Whittle (1982,
1983). This theory is also studied under the head&amp;shy;ing of stochastic optimal
control, where &lt;span class=afb&gt;adaptive&lt;/span&gt; optimal control methods are most
closely related to reinforcement learning (e.g., Kumar, 1985; Kumar and
Varaiya, 1986).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The theory of MDPs evolved from efforts to understand the problem of
mak&amp;shy;ing sequences of decisions under uncertainty, where each decision can
depend on the previous decisions and their outcomes. It is sometimes called the
theory of multistage decision processes, or sequential decision processes, and
has roots in the statistical literature on sequential sampling beginning with
the papers by Thompson (1933, 1934) and Robbins (1952) that we cited in Chapter
2 in connection with bandit problems (which are prototypical MDPs if formulated
as multiple-situation problems).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The earliest instance of which we are aware in which reinforcement
learning was discussed using the MDP formalism is Andreae\A1\AFs (1969b) description
of a unified view of learning machines. Witten and Corbin (1973) experimented
with a reinforcement learning system later analyzed by Witten (1977) using the
MDP formalism. Although he did not explicitly mention MDPs, Werbos (1977)
suggested approximate solution methods for stochastic optimal control problems
that are related to modern reinforcement learning methods (see also Werbos,
1982, 1987, 1988, 1989, 1992). Although Werbos\A1\AFs ideas were not widely
recognized at the time, they were prescient in emphasizing the importance of
approximately solving optimal control problems in a variety of domains,
including artificial intelligence. The most influential integration of
reinforcement learning and MDPs is due to Watkins (1989). His treatment of
reinforcement learning using the MDP formalism has been widely adopted.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Our characterization of the dynamics of an MDP in
terms of p(s&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt;
mso-ansi-language:EN-US&#39;&gt;\A1\A2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;r|s,a) is slightly
unusual. It is more common in the MDP literature to describe the dynamics in
terms of the state transition probabilities p(s&lt;sup&gt;;&lt;/sup&gt;|s, a) and ex&amp;shy;pected
next rewards r(s, a). In reinforcement learning, however, we more often have to
refer to individual actual or sample rewards (rather than just their expected
values). Our notation also makes it plainer that St and Rt are in general
jointly determined, and thus must have the same time index. In teaching
reinforcement learning, we have found our notation to be more straightforward
conceptually and easier to understand.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;3.7-8 Assigning value on the basis of what is good or bad in the
long run has ancient roots. In control theory, mapping states to numerical
values representing the long-term consequences of control decisions is a key
part of optimal control theory, which was developed in the 1950s by extending
nineteenth century state-function theories of classical mechanics (see, e.g.,
Schultz and Melsa, 1967). In describing how a computer could be programmed to
play chess, Shannon (1950) suggested using an evaluation function that took
into account the long-term advantages and disadvantages of chess positions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Watkins\A1\AFs (1989) Q-learning algorithm for estimating q* (Chapter &lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) made action-value functions an important part of reinforcement
learning, and con&amp;shy;sequently these functions are often called &lt;span class=afb&gt;Q-functions&lt;/span&gt;.
But the idea of an action-value function is much older than this. Shannon
(1950) suggested that a function h(P, M) could be used by a chess-playing
program to decide whether a move M in position &lt;span class=afb&gt;P&lt;/span&gt; is
worth exploring. Michie\A1\AFs (1961, 1963) MENACE system and Michie and Chambers\A1\AFs
(1968) BOXES system can be understood as estimating action-value functions. In
classical physics, Hamil&amp;shy;ton\A1\AFs principal function is an action-value function;
Newtonian dynamics are greedy with respect to this function (e.g., Goldstein,
1957). Action-value functions also played a central role in Denardo\A1\AFs (1967)
theoretical treatment of DP in terms of contraction mappings.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.15pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;What we call the Bellman equation for v* was first introduced by
Richard Bellman (1957a), who called it the \A1\B0basic functional equation.\A1\B1 The
coun&amp;shy;terpart of the Bellman optimality equation for continuous time and state
problems is known as the Hamilton-Jacobi-Bellman equation (or often just the
Hamilton-Jacobi equation), indicating its roots in classical physics (e.g.,
Schultz and Melsa, 1967).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:36.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The golf example was suggested by
Chris Watkins.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection72&gt;

&lt;p class=4f style=&#39;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
right 159.6pt 170.9pt 218.9pt 274.3pt 331.9pt 399.35pt;background:transparent&#39;&gt;&lt;span
class=41&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW;font-style:normal&#39;&gt;80&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=44&gt;&lt;span lang=EN-US&gt;CHAPTER&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=44&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;3.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;FINITE&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;MARKOV&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;DECISION&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;PROCESSES&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=8a style=&#39;margin-bottom:28.9pt;line-height:19.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Chapter 4&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f8 align=left style=&#39;margin-bottom:38.0pt;text-align:left;line-height:
22.0pt;mso-line-height-rule:exactly;mso-pagination:lines-together;page-break-after:
avoid;background:transparent&#39;&gt;&lt;a name=bookmark56&gt;&lt;span class=25&gt;&lt;span
lang=EN-US&gt;Dynamic Programming&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The term dynamic programming (DP) refers to a
collection of algorithms that can be used to compute optimal policies given a
perfect model of the environment as a Markov decision process (MDP). Classical
DP algorithms are of limited utility in reinforcement learning both because of
their assumption of a perfect model and because of their great computational expense,
but they are still important theoret&amp;shy;ically. DP provides an essential
foundation for the understanding of the methods presented in the rest of this
book. In fact, all of these methods can be viewed as attempts to achieve much
the same effect as DP, only with less computation and without assuming a
perfect model of the environment.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Starting with this chapter, we usually assume
that the environment is a finite MDP. That is, we assume that its state,
action, and reward sets, S, A(s), and R, for s G S, are finite, and that its
dynamics are given by a set of probabilities p(s&lt;sup&gt;;&lt;/sup&gt;, r|s, a), for all
s G S, a G A(s), r G R, and &lt;span class=afb&gt;s&lt;sup&gt;f&lt;/sup&gt;&lt;/span&gt; G S+ (S+ is S
plus a terminal state if the problem is episodic). Although DP ideas can be
applied to problems with continuous state and action spaces, exact solutions
are possible only in special cases. A common way of obtaining approximate
solutions for tasks with continuous states and actions is to quantize the state
and action spaces and then apply finite-state DP methods. The methods we
explore in Chapter 9 are applicable to continuous problems and are a
significant extension of that approach.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:46.55pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The key idea of DP, and of
reinforcement learning generally, is the use of value functions to organize and
structure the search for good policies. In this chapter we show how DP can be
used to compute the value functions defined in Chapter 3. As discussed there,
we can easily obtain optimal policies once we have found the optimal value
functions, v* or q*, which satisfy the Bellman optimality equations:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;
tab-stops:right 69.3pt left 79.85pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;v*(s)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\AA&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;maxE[Rt+i
&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;Yv*(St+i) | &lt;span
class=afb&gt;St&lt;/span&gt; \A1\AA s, At \A1\AA a]&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
8.0pt;margin-left:87.0pt;text-align:left;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=44&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:62.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:6.5pt;mso-line-height-rule:exactly;
tab-stops:right 399.7pt;background:transparent&#39;&gt;&lt;span class=3pt1&gt;&lt;span
lang=EN-US&gt;\A1\AAma^&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; p(s&lt;/span&gt;&amp;#12316;&lt;span
lang=EN-US&gt;r|s,a) r &lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;?v*(s&lt;sup&gt;;&lt;/sup&gt;)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(4.1)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:87.0pt;text-indent:0cm;line-height:6.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f align=left style=&#39;margin-left:103.0pt;text-align:left;line-height:
6.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=44&gt;&lt;span
lang=EN-US&gt;s&lt;sup&gt;;&lt;/sup&gt; ,r&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;i&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/i&gt;&lt;/p&gt;

&lt;div class=WordSection73&gt;

&lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;or&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;^p(s&#39;, r|s, a) r + &lt;span class=aff6&gt;y&lt;/span&gt;
m^xq*(s&#39;, a&#39;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.25pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
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lang=EN-US&gt;s&#39;,r&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;for all s G S, a G A(s), and s&#39; G S+. As we shall see, DP algorithms
are obtained by turning Bellman equations such as these into assignments, that
is, into update rules for improving approximations of the desired value
functions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
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lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;4.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Policy
Evaluation&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.5pt;
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0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;First we consider how to compute the state-value function v^ for an
arbitrary policy n. This is called &lt;span class=afb&gt;policy evaluation&lt;/span&gt; in
the DP literature. We also refer to it as the &lt;span class=afb&gt;prediction
problem.&lt;/span&gt; Recall from Chapter 3 that, for all s G S,&lt;/span&gt;&lt;/p&gt;

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mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afb&gt;&lt;span
lang=EN-US&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(s) = En[Gt | St = s]&lt;/span&gt;&lt;/p&gt;

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&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
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transparent&#39;&gt;&lt;span lang=EN-US&gt;where n(a|s) is the probability of taking action
a in state s under policy n, and the expectations are subscripted by n to
indicate that they are conditional on n being followed. The existence and
uniqueness of v^ are guaranteed as long as either &lt;span class=aff6&gt;y&lt;/span&gt; &amp;lt;
1 or eventual termination is guaranteed from all states under the policy n.&lt;/span&gt;&lt;/p&gt;

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  &lt;![if !mso]&gt;
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   &lt;tr&gt;
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    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.35pt;
    margin-left:141.0pt;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;s&#39;,r&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
    text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
    background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;for all s G S. Clearly, vk = v^
    is a fixed point for this update rule because the Bellman equation for v^
    assures us of equality in this case. Indeed, the sequence {vk} can be shown
    in general to converge to v^ as &lt;/span&gt;&lt;/span&gt;&lt;span class=aff5&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
    class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt; ^
    under the same conditions that guarantee the existence of v^. This
    algorithm is called &lt;/span&gt;&lt;/span&gt;&lt;span class=aff5&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;iterative policy evaluation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;If the environment\A1\AFs dynamics are completely known,
then (4.4) is a system of |S| simultaneous linear equations in |S| unknowns
(the v^(s), s G S). In principle, its solution is a straightforward, if
tedious, computation. For our purposes, itera&amp;shy;tive solution methods are most
suitable. Consider a sequence of approximate value functions vo, vi, v&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,..., each mapping S+ to R (the real numbers). The initial ap&amp;shy;proximation,
vo, is chosen arbitrarily (except that the terminal state, if any, must be
given value 0), and each successive approximation is obtained by using the
Bellman equation for v^ (3.14) as an update rule:&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection76&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:10.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;To produce each successive approximation, Vk&lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; from Vk,
iterative policy evalua&amp;shy;tion applies the same operation to each state s: it
replaces the old value of s with a new value obtained from the old values of
the successor states of s, and the expected immediate rewards, along all the
one-step transitions possible under the policy being evaluated. We call this
kind of operation a &lt;span class=afb&gt;full backup.&lt;/span&gt; Each iteration of
iterative policy evaluation &lt;span class=afb&gt;backs up&lt;/span&gt; the value of every
state once to produce the new approxi&amp;shy;mate value function Vk&lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. There are
several different kinds of full backups, depending on whether a state (as here)
or a state-action pair is being backed up, and depending on the precise way the
estimated values of the successor states are combined. All the backups done in
DP algorithms are called &lt;span class=afb&gt;full&lt;/span&gt; backups because they are
based on all possible next states rather than on a sample next state. The
nature of a backup can be expressed in an equation, as above, or in a backup
diagram like those introduced in Chapter 3. For example, Figure 3.4 (left) is
the backup diagram corresponding to the full backup used in iterative policy
evaluation.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:10.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;To write a sequential computer program to
implement iterative policy evaluation, as given by (4.5), you would have to use
two arrays, one for the old values, Vk(s), and one for the new values, Vk&lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(s). This
way, the new values can be computed one by one from the old values without the
old values being changed. Of course it is easier to use one array and update
the values \A1\B0in place,\A1\B1 that is, with each new backed-up value immediately
overwriting the old one. Then, depending on the order in which the states are
backed up, sometimes new values are used instead of old ones on the right-hand
side of (4.5). This slightly different algorithm also converges to Vn; in fact,
it usually converges faster than the two-array version, as you might expect,
since it uses new data as soon as they are available. We think of the backups
as being done in a &lt;span class=afb&gt;sweep&lt;/span&gt; through the state space. For
the in-place algorithm, the order in which states are backed up during the sweep
has a significant influence on the rate of convergence. We usually have the
in-place version in mind when we think of DP algorithms.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:30.35pt;text-align:justify;text-justify:
inter-ideograph;text-indent:10.0pt;line-height:13.7pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Another implementation point
concerns the termination of the algorithm. For&amp;shy;mally, iterative policy
evaluation converges only in the limit, but in practice it must&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:7.25pt;text-align:justify;text-justify:
inter-ideograph;text-indent:10.0pt;line-height:9.5pt;mso-line-height-rule:exactly;
background:black&#39;&gt;&lt;span class=af7&gt;&lt;span lang=EN-US&gt;Iterative policy evaluation&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:189.0pt;margin-bottom:0cm;
margin-left:11.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Input n,
the policy to be evaluated Initialize an array &lt;span class=afb&gt;V&lt;/span&gt;(s) = 0,
for all s G S&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Repeat A ^ &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:24.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For each
s G S:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:42.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l27 level1 lfo12;tab-stops:64.1pt 65.05pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;V(s)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:135.0pt;margin-bottom:0cm;
margin-left:11.0pt;margin-bottom:.0001pt;text-indent:31.0pt;line-height:12.7pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;V(s)
\A1\AA&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; Ea n&lt;sup&gt;(a|s)&lt;/sup&gt; &lt;span class=-2pt&gt;Es,&lt;/span&gt;&lt;/span&gt;&lt;span
class=-2pt&gt;\A3\AC&lt;span lang=EN-US&gt;r&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; p&lt;sup&gt;(s&lt;/sup&gt;&#39;&lt;sup&gt;,r|s,a)&lt;/sup&gt;
[&lt;sup&gt;r&lt;/sup&gt; + 7&lt;sup&gt;V(s&lt;/sup&gt;&#39;&lt;sup&gt;)&lt;/sup&gt;] A &lt;/span&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A8D &lt;/span&gt;&lt;span lang=EN-US&gt;max(A, |v \A1\AA V(s)|)
until A &amp;lt; &lt;span class=afb&gt;Q&lt;/span&gt; (a small positive number)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:1.2pt;text-align:justify;text-justify:
inter-ideograph;text-indent:10.0pt;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Output V Vn&lt;br clear=all
style=&#39;page-break-before:always&#39;&gt;
be halted short of this. A typical stopping condition for iterative policy
evaluation is to test the quantity maxs^S |v^+i(s) \A1\AA v^ (s)| after each sweep
and stop when it is sufficiently small. The box shows a complete algorithm with
this stopping criterion.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Example 4.1 Consider the 4x4 gridworld shown below.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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&lt;div class=WordSection78&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:2.65pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 402.05pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The nonterminal states are S \A1\AA {1,
2,..., 14}. There are four actions possible in each state, &lt;span class=afb&gt;A&lt;/span&gt;
\A1\AA {up, down, right, left}, which deterministically cause the corresponding
state transitions, except that actions that would take the agent off the grid
in fact leave the state unchanged. Thus, for instance, p(&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, \A1\AA1 | 5, right) \A1\AA 1, p(7, \A1\AA1 | 7, right) \A1\AA 1, and p(10, r | 5,
right) \A1\AA 0 for all r G R. This is an undiscounted, episodic task. The reward is
\A1\AA1 on all transitions until the terminal state is reached. The terminal state
is shaded in the figure (although it is shown in two places, it is formally one
state). The expected reward function is thus r(s, a, s&lt;sup&gt;;&lt;/sup&gt;) \A1\AA \A1\AA1 for
all states s, &lt;span class=afb&gt;s&lt;sup&gt;f&lt;/sup&gt;&lt;/span&gt; and actions a. Suppose the
agent follows the equiprobable random policy (all actions equally likely). The
left side of Figure 4.1 shows the sequence of value functions {v^} computed by
iterative policy evaluation. The final estimate is in fact vn, which in this
case gives for each state the negation of the expected number of steps from
that state until termination.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.4pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.9pt;mso-line-height-rule:exactly;tab-stops:right 402.05pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 4.1 In Example 4.1, if n is
the equiprobable random policy, what is qn(11, down)? What is q^(7, down)?&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
center 193.25pt 212.2pt left 269.1pt center 297.9pt left 320.7pt right 402.05pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 4.2 In Example 4.1, suppose a
new state 15 is added to the gridworld just below state 13, and its actions,
left, up, right, and down, take the agent to states &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, 13, 14,
and 15, respectively. Assume that the transitions &lt;span class=afb&gt;from&lt;/span&gt;
the original states are unchanged. What, then, is v^(15) for the equiprobable
random policy? Now suppose the dynamics of state 13&lt;span style=&#39;mso-tab-count:
1&#39;&gt; &lt;/span&gt;are&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;also
changed,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;such&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;that&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;action
down&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;from&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
center 184.85pt 212.2pt 238.85pt 259.5pt left 269.1pt right 317.55pt left 320.7pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;state 13 takes the agent to the new&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;state&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;15.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;What&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;is&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;v^(15)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;for&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;the
equiprobable&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.45pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 402.05pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;random policy in this case?&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:14.15pt;mso-line-height-rule:exactly;tab-stops:
right 402.05pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 4.3 What are
the equations analogous to (4.3), (4.4), and (4.5) for the action-value
function q^ and its successive approximation by a sequence of functions qo,qi,q&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &amp;#8226; &amp;#8226; &amp;#8226; ?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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       6.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
       class=6pt0&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;-7.7&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection80&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:11.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Figure 4.1: Convergence of iterative policy
evaluation on a small gridworld. The left column is the sequence of
approximations of the state-value function for the random policy (all actions
equal). The right column is the sequence of greedy policies corresponding to
the value function estimates (arrows are shown for all actions achieving the
maximum). The last policy is guaranteed only to be an improvement over the
random policy, but in this case it, and all policies after the third iteration,
are optimal.&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:18.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l24 level1 lfo15;
tab-stops:37.7pt;background:transparent&#39;&gt;&lt;a name=bookmark58&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;4.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Policy
Improvement&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:25.8pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Our reason for computing the value function for a policy is to help
find better policies. Suppose we have determined the value function v^ for an
arbitrary deterministic policy n. For some state s we would like to know
whether or not we should change the policy to deterministically choose an
action a = n(s). We know how good it is to follow the current policy from
s\A1\AAthat is v^(s)\A1\AAbut would it be better or worse to change to the new policy?
One way to answer this question is to consider selecting a in s and thereafter
following the existing policy, n. The value of this way of behaving is&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:18.7pt;mso-line-height-rule:exactly;
tab-stops:right 400.7pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;qn(s,a) =
En[Rt+i + Yv^(St+i) | St = s, At = a]&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(4.6)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:73.0pt;text-indent:0cm;line-height:18.7pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=&lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\B6\FE&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;p(s&#39;,
r|s, a) r + yv^(s&#39;).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:25.75pt;
margin-left:92.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;s&#39;,r&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The key criterion is whether this is greater than
or less than v^(s). If it is greater\A1\AA that is, if it is better to select a once
in s and thereafter follow n than it would be to follow n all the time\A1\AAthen one
would expect it to be better still to select a every time s is encountered, and
that the new policy would in fact be a better one overall.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:33.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;That this is true is a special case of a general result called the &lt;span
class=afb&gt;policy improvement theorem.&lt;/span&gt; Let n and n&#39; be any pair of
deterministic policies such that, for all s G S,&lt;/span&gt;&lt;/p&gt;

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    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(4.7)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;qn(s,n&#39;(s)) &amp;gt; vn(s).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:33.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Then the policy n&#39; must be as good as, or better than, n. That is,
it must obtain greater or equal expected return from all states s G S:&lt;/span&gt;&lt;/p&gt;

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    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(4.8)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;vn&#39;(s) &amp;gt; vn(s).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Moreover, if there is strict inequality of (4.7)
at any state, then there must be strict inequality of (4.8) at at least one
state. This result applies in particular to the two policies that we considered
in the previous paragraph, an original deterministic policy, n, and a changed
policy, n&#39;, that is identical to n except that n&#39;(s) = a = n(s). Obviously,
(4.7) holds at all states other than s. Thus, if q^(s, a) &amp;gt; v^(s), then the
changed policy is indeed better than n.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The idea behind the proof of the policy
improvement theorem is easy to under&amp;shy;stand. Starting from (4.7), we keep
expanding the q^ side and reapplying (4.7) until&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
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&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection81&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:12.35pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;we get
vy(s):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-right:18.0pt;text-align:right;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afb&gt;&lt;span lang=EN-US&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; (s) &amp;lt; qn (s,n&lt;sup&gt;;&lt;/sup&gt;(s))&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection82&gt;

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&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
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&lt;div class=WordSection83&gt;

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class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
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class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
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margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection85&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.2pt;
margin-left:63.0pt;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;&amp;lt; Ef [Rt+i &lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;YRt&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;Y&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Rt&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+3&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;Y&lt;/span&gt;&lt;span
class=9pt2&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;3&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Rt&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+4&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;\A1\F6 \A1\F6 \A1\F6 &lt;/span&gt;&lt;span class=9pt2&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; St \A1\AA s]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.25pt;
margin-left:63.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=3pt1&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;\A1\AAv&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;n&lt;sup&gt;;&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt; (s)&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:9.15pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;So far we have seen how, given a policy and its value function, we
can easily evaluate a change in the policy at a single state to a particular
action. It is a natural extension to consider changes at &lt;span class=afb&gt;all&lt;/span&gt;
states and to &lt;span class=afb&gt;all&lt;/span&gt; possible actions, selecting at each
state the action that appears best according to q^(s, a). In other words, to
consider the new &lt;span class=afb&gt;greedy&lt;/span&gt; policy, n&lt;sup&gt;;&lt;/sup&gt;, given by&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:right 70.65pt 94.0pt 115.6pt left 117.75pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;n&lt;sup&gt;;&lt;/sup&gt;(s)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\AA&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;arg&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;max&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;q^ (s, a)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:.55pt;
margin-left:93.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
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  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(4.9)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=3pt1&gt;&lt;span lang=EN-US&gt;\A1\AAarg&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;
max E[Rt+i &lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;yv^(St+i) | St \A1\AA s, At
\A1\AA a]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.7pt;
margin-left:93.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.5pt;
margin-left:79.0pt;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;arg max ^ p(s&lt;sup&gt;;&lt;/sup&gt;,
r|s, a) r &lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;yv^ (s&#39;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.25pt;
margin-left:93.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 132.85pt;
background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;s,,r&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:2.8pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where arg maxa denotes the value of a at which the expression that
follows is max&amp;shy;imized (with ties broken arbitrarily). The greedy policy takes
the action that looks best in the short term\A1\AAafter one step of
lookahead\A1\AAaccording to v^. By construc&amp;shy;tion, the greedy policy meets the
conditions of the policy improvement theorem (4.7), so we know that it is as
good as, or better than, the original policy. The process of making a new
policy that improves on an original policy, by making it greedy with respect to
the value function of the original policy, is called &lt;span class=afb&gt;policy
improvement&lt;/span&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:7.75pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Suppose the new greedy policy, n&#39;, is as good as, but not better
than, the old policy n. Then v^ \A1\AA v#, and from (4.9) it follows that for all s
G S:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:42.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;
tab-stops:right 70.65pt left 83.3pt right 207.85pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;(s)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;\A1\AA&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;maxE[Rt+i &lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(St+i) | St \A1\AA s, At \A1\AA a]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.25pt;
margin-left:93.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:63.0pt;text-indent:0cm;line-height:11.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=3pt1&gt;&lt;span
lang=EN-US&gt;\A1\AAma^&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &amp;gt; p(s&#39;, r|s, a) r &lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span class=afb&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(s&#39;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:93.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.75pt;
margin-left:107.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;span class=9pt2&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;,r&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:3.0pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;But this is the same as the Bellman optimality equation (4.1), and
therefore, v^^ must be v*, and both n and n&#39; must be optimal policies. Policy
improvement thus must give us a strictly better policy except when the original
policy is already optimal.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;So far in this section we have considered the
special case of deterministic policies. In the general case, a stochastic
policy n specifies probabilities, n(a|s), for taking&lt;br clear=all
style=&#39;page-break-before:always&#39;&gt;
each action, a, in each state, s. We will not go through the details, but in
fact all the ideas of this section extend easily to stochastic policies. In
particular, the policy improvement theorem carries through as stated for the
stochastic case. In addition, if there are ties in policy improvement steps
such as (4.9)\A1\AAthat is, if there are several actions at which the maximum is
achieved\A1\AAthen in the stochastic case we need not select a single action from
among them. Instead, each maximizing action can be given a portion of the
probability of being selected in the new greedy policy. Any apportioning scheme
is allowed as long as all submaximal actions are given zero probability.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:27.35pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The last row of Figure &lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;4.1 &lt;/span&gt;&lt;span lang=EN-US&gt;shows an
example of policy improvement for stochastic policies. Here the original
policy, n, is the equiprobable random policy, and the new policy, n&#39;, is greedy
with respect to v^. The value function v^ is shown in the bottom-left diagram
and the set of possible n&#39; is shown in the bottom-right diagram. The states
with multiple arrows in the n&#39; diagram are those in which several actions
achieve the maximum in (4.9); any apportionment of probability among these
actions is permitted. The value function of any such policy, v^&#39;(s), can be
seen by inspection to be either \A1\AA1, -2, or \A1\AA3 at all states, s G S, whereas
v^(s) is at most \A1\AA14. Thus, v&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;آ&lt;/span&gt;&lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;&#39;&lt;/span&gt;&lt;span lang=EN-US&gt;(s) &amp;gt; v&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;آ&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(s), for all s G S,
illustrating policy improvement. Although in this case the new policy n&#39;
happens to be optimal, in general only an improvement is guaranteed.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l24 level1 lfo15;
tab-stops:36.7pt;background:transparent&#39;&gt;&lt;a name=bookmark59&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;4.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Policy Iteration&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:12.3pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Once a policy, n, has been improved
using v^ to yield a better policy, n&#39;, we can then compute v^&#39; and improve it
again to yield an even better n&#39;&#39;. We can thus obtain a sequence of
monotonically improving policies and value functions:&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:13.45pt;mso-element-frame-hspace:
61.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
mso-element-anchor-horizontal:column;mso-element-left:61.5pt;mso-element-top:
.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=18&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=18 style=&#39;padding-top:0cm;padding-right:
  61.45pt;padding-bottom:0cm;padding-left:61.45pt&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:13.45pt;mso-element-frame-hspace:61.45pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:61.5pt;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_12&#34; o:spid=&#34;_x0000_i1111&#34;
   type=&#34;#_x0000_t75&#34; alt=&#34;image21&#34; style=&#39;width:212.25pt;height:12.75pt;
   visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image023.png&#34;
    o:title=&#34;image21&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:14.8pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;where \A1\AA^ denotes a policy &lt;span class=afb&gt;evaluation&lt;/span&gt;
and denotes a policy &lt;span class=afb&gt;improvement&lt;/span&gt;. Each policy is
guaranteed to be a strict improvement over the previous one (unless it is
already optimal). Because a finite MDP has only a finite number of policies,
this process must converge to an optimal policy and optimal value function in a
finite number of iterations.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;This way of finding an optimal policy is called &lt;span
class=afb&gt;policy iteration&lt;/span&gt;. A complete al&amp;shy;gorithm is given in the box on
the next page&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;.&lt;a
style=&#39;mso-footnote-id:ftn9&#39; href=&#34;#_ftn9&#34; name=&#34;_ftnref9&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=9pt2&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[9]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; Note that each policy evaluation, itself an iterative computation,
is started with the value function for the previous policy. This typically
results in a great increase in the speed of convergence of policy evaluation
(presumably because the value function changes little from one policy to the
next).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.2pt;
margin-left:11.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span
class=af7&gt;&lt;span lang=EN-US&gt;Policy iteration (using iterative policy evaluation)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.9pt;
margin-left:11.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;mso-list:l9 level1 lfo16;
tab-stops:24.05pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;1.&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Initialization&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.85pt;
margin-left:24.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afb&gt;&lt;span lang=EN-US&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(s) G R and n(s) G A(s) arbitrarily for all s G S&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:276.0pt;margin-bottom:0cm;
margin-left:24.0pt;margin-bottom:.0001pt;text-indent:-13.0pt;line-height:13.7pt;
mso-line-height-rule:exactly;mso-list:l9 level1 lfo16;tab-stops:24.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;2.&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
lang=EN-US&gt;Policy Evaluation Repeat&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:24.0pt;text-indent:18.0pt;line-height:13.7pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;A ^ &lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:143.0pt;margin-bottom:0cm;
margin-left:60.0pt;margin-bottom:.0001pt;text-indent:-18.0pt;line-height:13.7pt;
mso-line-height-rule:exactly;tab-stops:center 93.6pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;For each s G S: v&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;V(s)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:60.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;
mso-list:l27 level1 lfo12;tab-stops:69.1pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;(s) &lt;/span&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A8D &lt;/span&gt;&lt;span class=-2pt&gt;&lt;span lang=EN-US&gt;Es&lt;/span&gt;\A1\A2&lt;span
lang=EN-US&gt;r&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; p(s&#39;, r|s, n(s)) [r &lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;yV(s&#39;)]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=center style=&#39;margin-top:0cm;margin-right:0cm;
margin-bottom:14.8pt;margin-left:24.0pt;text-align:center;text-indent:0cm;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;A &lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A8D &lt;/span&gt;&lt;span
lang=EN-US&gt;max(A, |v \A1\AA V(s)|) until A &amp;lt; &lt;span class=afb&gt;Q&lt;/span&gt; (a small
positive number)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:276.0pt;margin-bottom:0cm;
margin-left:24.0pt;margin-bottom:.0001pt;text-indent:-13.0pt;line-height:13.7pt;
mso-line-height-rule:exactly;mso-list:l9 level1 lfo16;tab-stops:24.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;3.&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
lang=EN-US&gt;Policy Improvement &lt;span class=afb&gt;policy-stable&lt;/span&gt; &lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A8D &lt;/span&gt;&lt;span class=afb&gt;&lt;span
lang=EN-US&gt;true &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;For each s G S:&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f align=left style=&#39;margin-left:24.0pt;text-align:left;text-indent:
18.0pt;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=44&gt;&lt;span lang=EN-US&gt;old-action&lt;/span&gt;&lt;/span&gt;&lt;span class=41&gt;&lt;span
lang=EN-US style=&#39;font-style:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=41&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW;font-style:normal&#39;&gt;\A8D &lt;/span&gt;&lt;/span&gt;&lt;span
class=41&gt;&lt;span lang=EN-US style=&#39;font-style:normal&#39;&gt;n(s)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:24.0pt;text-indent:18.0pt;line-height:13.7pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;n(s) &lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A8D &lt;/span&gt;&lt;span lang=EN-US&gt;argmaxa &lt;span
class=-2pt&gt;Es&lt;/span&gt;&lt;/span&gt;&lt;span class=-2pt&gt;\A1\A2&lt;span lang=EN-US&gt;r&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; P(s&#39;, r|s, a) [r &lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span
lang=EN-US&gt;yV (s&#39;)]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:48.0pt;margin-bottom:0cm;
margin-left:24.0pt;margin-bottom:.0001pt;text-indent:18.0pt;line-height:13.7pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If &lt;span
class=afb&gt;old-action&lt;/span&gt; \A1\AA n(s), then &lt;span class=afb&gt;policy-stable&lt;/span&gt; &lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A8D &lt;/span&gt;&lt;span lang=EN-US&gt;false If &lt;span
class=afb&gt;policy-stable,&lt;/span&gt; then stop and return V c v* and n c n*; else go
to 2&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection87&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:22.65pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.75pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Figure 4.2: The sequence of policies found by policy iteration on
Jack\A1\AFs car rental problem, and the final state-value function. The first five diagrams
show, for each number of cars at each location at the end of the day, the
number of cars to be moved from the first location to the second (negative
numbers indicate transfers from the second location to the first). Each
successive policy is a strict improvement over the previous policy, and the
last policy is optimal.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 399.6pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;be moved from one location to the
other in one night. We take the discount rate to be Y = 0.9 and formulate this
as a continuing finite MDP, where the time steps are days, the state is the
number of cars at each location at the end of the day, and the actions are the
net numbers of cars moved between the two locations overnight. Figure 4.2 shows
the sequence of policies found by policy iteration starting from the policy
that never moves any cars.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 4.4 (programming) Write a
program for policy iteration and re-solve Jack\A1\AFs car rental problem with the
following changes. One of Jack\A1\AFs employees at the first location rides a bus
home each night and lives near the second location. She is happy to shuttle one
car to the second location for free. Each additional car still costs $2, as do
all cars moved in the other direction. In addition, Jack has limited parking
space at each location. If more than 10 cars are kept overnight at a location
(after any moving of cars), then an additional cost of $4 must be incurred to
use a second parking lot (independent of how many cars are kept there). These
sorts of nonlinearities and arbitrary dynamics often occur in real problems and
cannot easily be handled by optimization methods other than dynamic
programming. To check your program, first replicate the results given for the
original problem. If your computer is too slow for the full problem, cut all
the numbers of cars in half. \A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection88&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 398.9pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 4.5
How would policy iteration be defined for action values? Give a complete
algorithm for computing q*, analogous to that on page 89 for computing&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l27 level1 lfo12;
tab-stops:right 399.8pt left 5.75pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;*. Please pay special attention
to this exercise, because the ideas involved will be used throughout the rest
of the book.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Exercise 4.6 Suppose you are restricted to considering only policies
that are &lt;span class=afb&gt;e-soft, &lt;/span&gt;meaning that the probability of
selecting each action in each state, s, is at least e/|A(s)|. Describe
qualitatively the changes that would be required in each of the steps 3, 2, and
1, in that order, of the policy iteration algorithm for V* (page 89). \A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l24 level1 lfo15;
tab-stops:36.5pt;background:transparent&#39;&gt;&lt;a name=bookmark60&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;4.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Value Iteration&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;One drawback to policy iteration is
that each of its iterations involves policy eval&amp;shy;uation, which may itself be a
protracted iterative computation requiring multiple sweeps through the state
set. If policy evaluation is done iteratively, then conver&amp;shy;gence exactly to Vn
occurs only in the limit. Must we wait for exact convergence, or can we stop
short of that? The example in Figure 4.1 certainly suggests that it may be
possible to truncate policy evaluation. In that example, policy evaluation
iterations beyond the first three have no effect on the corresponding greedy
policy.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.55pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In fact, the policy evaluation step of policy iteration can be
truncated in several ways without losing the convergence guarantees of policy
iteration. One important special case is when policy evaluation is stopped
after just one sweep (one backup of each state). This algorithm is called &lt;span
class=afb&gt;value iteration&lt;/span&gt;. It can be written as a particularly simple
backup operation that combines the policy improvement and truncated policy
evaluation steps:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;
tab-stops:72.9pt right 399.8pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Vk&lt;/span&gt;&lt;span
class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(s)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;=
maxE[Ri&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;%(S&lt;sub&gt;w&lt;/sub&gt;) | Si = s, Ai = a]&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(4.10)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.45pt;
margin-left:99.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:73.0pt;text-indent:0cm;line-height:6.25pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=3pt1&gt;&lt;span
lang=EN-US&gt;=ma^&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; p(s&#39;, r|s,
a) r + &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Vk(s&#39;),&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:99.0pt;text-indent:0cm;line-height:6.25pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.05pt;
margin-left:114.0pt;text-indent:0cm;line-height:6.25pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afb&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,&lt;/span&gt;\A3\AC&lt;span lang=EN-US&gt;r&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;for all s G S. For arbitrary Vo, the
sequence {Vk} can be shown to converge to V* under the same conditions that
guarantee the existence of V*.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Another way of understanding
value iteration is by reference to the Bellman op&amp;shy;timality equation (4.1). Note
that value iteration is obtained simply by turning the Bellman optimality
equation into an update rule. Also note how the value iteration backup is
identical to the policy evaluation backup (4.5) except that it requires the
maximum to be taken over all actions. Another way of seeing this close
relationship is to compare the backup diagrams for these algorithms: Figure 3.4
(left) shows the backup diagram for policy evaluation and Figure 3.7 (left)
shows the backup diagram for value iteration. These two are the natural backup
operations for computing Vn and V*.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Finally, let us consider how
value iteration terminates. Like policy evaluation, value iteration formally
requires an infinite number of iterations to converge exactly to V*. In
practice, we stop once the value function changes by only a small amount&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:8.4pt;text-align:justify;text-justify:
inter-ideograph;text-indent:10.0pt;line-height:9.5pt;mso-line-height-rule:exactly;
background:black&#39;&gt;&lt;span class=af7&gt;&lt;span lang=EN-US&gt;Value iteration&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:13.05pt;text-align:justify;text-justify:
inter-ideograph;text-indent:10.0pt;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize array V arbitrarily (e.g.,
V(s) \A1\AA 0 for all s G S&lt;sup&gt;+&lt;/sup&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:308.0pt;margin-bottom:0cm;
margin-left:24.0pt;margin-bottom:.0001pt;text-indent:-13.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat A &lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A8D &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=center style=&#39;margin-left:24.0pt;text-align:center;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;For each s G S: v &lt;/span&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A8D &lt;/span&gt;&lt;span lang=EN-US&gt;V(s)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:42.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l27 level1 lfo12;tab-stops:50.9pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;(s) &lt;/span&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A8D &lt;/span&gt;&lt;span lang=EN-US&gt;maxaEsV p(s&#39;,r|s,a)
[r &lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;yV (s&#39;)]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=center style=&#39;margin-top:0cm;margin-right:0cm;
margin-bottom:8.25pt;margin-left:10.0pt;text-align:center;text-indent:0cm;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;A &lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A8D &lt;/span&gt;&lt;span
lang=EN-US&gt;max(A, |v \A1\AA V(s)|) until A &amp;lt; Q (a small positive number)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-top:0cm;margin-right:161.0pt;
margin-bottom:33.6pt;margin-left:10.0pt;text-align:right;text-indent:0cm;
line-height:14.4pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Output a deterministic policy, n c [*, such that n(s) \A1\AA argmaxa &lt;span
class=-2pt&gt;Es&lt;/span&gt;&lt;/span&gt;&lt;span class=-2pt&gt;\A1\A2&lt;span lang=EN-US&gt;r&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; P(s&#39;, r|s, a) [r &lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span
lang=EN-US&gt;yV (s&#39;)]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;in a sweep. The box shows a complete
algorithm with this kind of termination condition.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
10.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Value iteration effectively combines, in each of its sweeps, one
sweep of policy evaluation and one sweep of policy improvement. Faster
convergence is often achieved by interposing multiple policy evaluation sweeps
between each policy improvement sweep. In general, the entire class of
truncated policy iteration algorithms can be thought of as sequences of sweeps,
some of which use policy evaluation backups and some of which use value
iteration backups. Since the max operation in (4.10) is the only difference
between these backups, this just means that the max operation is added to some
sweeps of policy evaluation. All of these algorithms converge to an optimal
policy for discounted finite MDPs.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 4.3: Gambler\A1\AFs Problem A
gambler has the opportunity to make bets on the outcomes of a sequence of coin
flips. If the coin comes up heads, he wins as many dollars as he has staked on
that flip; if it is tails, he loses his stake. The game ends when the gambler
wins by reaching his goal of $&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;100&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, or loses by running
out of money. On each flip, the gambler must decide what portion of his capital
to stake, in integer numbers of dollars. This problem can be formulated as an
undiscounted, episodic, finite MDP. The state is the gambler\A1\AFs capital, s G {1,
&lt;span class=1pt1&gt;2,...,&lt;/span&gt; 99} and the actions are stakes, a G &lt;span
class=1pt1&gt;{0,1,...,&lt;/span&gt; min(s, &lt;span class=1pt2&gt;100\A1\AAs)}.&lt;/span&gt; The reward
is zero on all transitions except those on which the gambler reaches his goal,
when it is &lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;1. &lt;/span&gt;&lt;span lang=EN-US&gt;The
state-value function then gives the probability of winning from each state. A
policy is a mapping from levels of capital to stakes. The optimal policy
maximizes the probability of reaching the goal. Let ph denote the probability
of the coin coming up heads. If ph is known, then the entire problem is known
and it can be solved, for instance, by value iteration. Figure 4.3 shows the
change in the value function over successive sweeps of value iteration, and the
final policy found, for the case of ph \A1\AA 0.4. This policy is optimal, but not
unique. In fact, there is a whole family of optimal policies, all corresponding
to ties for the argmax action selection with respect to the optimal&lt;br
clear=all style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=380 style=&#39;margin-right:7.0pt;line-height:12.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:209.05pt;mso-element-frame-height:
132.7pt;mso-element-frame-hspace:78.25pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:237.9pt;mso-element-top:24.3pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=383 height=177&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=177 style=&#39;padding-top:0cm;padding-right:
  78.25pt;padding-bottom:0cm;padding-left:78.25pt&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:209.05pt;
  mso-element-frame-height:132.7pt;mso-element-frame-hspace:78.25pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:237.9pt;mso-element-top:24.3pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_13&#34; o:spid=&#34;_x0000_i1110&#34;
   type=&#34;#_x0000_t75&#34; alt=&#34;image28&#34; style=&#39;width:209.25pt;height:132.75pt;
   visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image031.jpg&#34;
    o:title=&#34;image28&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:305.75pt;mso-element-frame-height:
25.85pt;mso-element-frame-hspace:78.25pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:119.1pt;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=512 height=34&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=34 style=&#39;padding-top:0cm;padding-right:
  78.25pt;padding-bottom:0cm;padding-left:78.25pt&#39;&gt;
  &lt;p class=afffff8 align=left style=&#39;margin-bottom:6.6pt;text-align:left;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:305.75pt;mso-element-frame-height:
  25.85pt;mso-element-frame-hspace:78.25pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:119.1pt;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US&gt;value
  function. Can you guess what the entire family looks like?&lt;/span&gt;&lt;/p&gt;
  &lt;p class=166 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
  margin-left:126.0pt;margin-bottom:.0001pt;line-height:8.0pt;mso-line-height-rule:
  exactly;background:transparent;mso-element:frame;mso-element-frame-width:
  305.75pt;mso-element-frame-height:25.85pt;mso-element-frame-hspace:78.25pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:119.1pt;mso-element-top:
  .05pt&#39;&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:41.75pt;mso-element-frame-height:
19.2pt;mso-element-frame-hspace:78.25pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:185.6pt;mso-element-top:70.85pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=160 height=26&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=26 style=&#39;padding-top:0cm;padding-right:
  78.25pt;padding-bottom:0cm;padding-left:78.25pt&#39;&gt;
  &lt;p class=6c style=&#39;margin-left:8.0pt;line-height:8.5pt;mso-line-height-rule:
  exactly;background:transparent;mso-element:frame;mso-element-frame-width:
  41.75pt;mso-element-frame-height:19.2pt;mso-element-frame-hspace:78.25pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:185.6pt;mso-element-top:
  70.85pt&#39;&gt;&lt;span class=60&gt;&lt;span lang=EN-US&gt;Value&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=6c style=&#39;line-height:8.5pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:41.75pt;mso-element-frame-height:
  19.2pt;mso-element-frame-hspace:78.25pt;mso-element-wrap:no-wrap-beside;
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&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
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&lt;div class=WordSection90&gt;

&lt;p class=343 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
11.15pt;margin-left:213.0pt;text-align:left;line-height:8.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Capital&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.85pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Figure 4.3: The solution to the gambler\A1\AFs problem for &lt;span
class=afb&gt;ph&lt;/span&gt; = 0.4. The upper graph shows the value function found by
successive sweeps of value iteration. The lower graph shows the final policy.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 399.95pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 4.7 Why does the optimal
policy for the gambler\A1\AFs problem have such a curious form? In particular, for
capital of 50 it bets it all on one flip, but for capital of 51 it does not.
Why is this a good policy?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.45pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 399.95pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 4.8 (programming) Implement
value iteration for the gambler\A1\AFs problem and solve it for ph = 0.25 and ph =
0.55. In programming, you may find it convenient to introduce two dummy states
corresponding to termination with capital of &lt;/span&gt;&lt;span class=9pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; and 100,
giving them values of 0 and 1 respectively. Show your results graphically, as
in Figure 4.3. Are your results stable as Q 0?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:21.95pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:14.15pt;mso-line-height-rule:exactly;tab-stops:right 399.95pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 4.9 What is the analog of the
value iteration backup (4.10) for action values, qk&lt;/span&gt;&lt;span class=MingLiUa&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(s, a)?&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

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tab-stops:37.7pt;background:transparent&#39;&gt;&lt;a name=bookmark61&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;4.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Asynchronous
Dynamic Programming&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;A major drawback to the DP methods that we have
discussed so far is that they involve operations over the entire state set of
the MDP, that is, they require sweeps of the state set. If the state set is
very large, then even a single sweep can be prohibitively expensive. For
example, the game of backgammon has over 10&lt;/span&gt;&lt;span class=9pt2&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;20&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;
states.&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Even if we could perform the value
iteration backup on a million states per second, it would take over a thousand
years to complete a single sweep.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afb&gt;&lt;span lang=EN-US&gt;Asynchronous&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; DP algorithms are in-place iterative DP algorithms that are not
organized in terms of systematic sweeps of the state set. These algorithms back
up the values of states in any order whatsoever, using whatever values of other
states happen to be available. The values of some states may be backed up
several times before the values of others are backed up once. To converge
correctly, however, an asynchronous algorithm must continue to backup the
values of all the states: it can\A1\AFt ignore any state after some point in the
computation. Asynchronous DP algorithms allow great flexibility in selecting
states to which backup operations are applied.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For example, one version of
asynchronous value iteration backs up the value, in place, of only one state,
sk, on each step, k, using the value iteration backup (4.10). If 0 &amp;lt; &lt;span
class=aff6&gt;y&lt;/span&gt; &amp;lt; 1, asymptotic convergence to v* is guaranteed given
only that all states occur in the sequence &lt;span class=1pt1&gt;{sk}&lt;/span&gt; an
infinite number of times (the sequence could even be stochastic). (In the
undiscounted episodic case, it is possible that there are some orderings of
backups that do not result in convergence, but it is relatively easy to avoid
these.) Similarly, it is possible to intermix policy evaluation and value
iteration backups to produce a kind of asynchronous truncated policy iteration.
Although the details of this and other more unusual DP algorithms are beyond
the scope of this book, it is clear that a few different backups form building
blocks that can be used flexibly in a wide variety of sweepless DP algorithms.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Of course, avoiding sweeps
does not necessarily mean that we can get away with less computation. It just
means that an algorithm does not need to get locked into any hopelessly long
sweep before it can make progress improving a policy. We can try to take
advantage of this flexibility by selecting the states to which we apply backups
so as to improve the algorithm\A1\AFs rate of progress. We can try to order the
backups to let value information propagate from state to state in an efficient
way. Some states may not need their values backed up as often as others. We
might even try to skip backing up some states entirely if they are not relevant
to optimal behavior. Some ideas for doing this are discussed in Chapter &lt;/span&gt;&lt;span
class=9pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Asynchronous algorithms also
make it easier to intermix computation with real&amp;shy;time interaction. To solve a
given MDP, we can run an iterative DP algorithm &lt;span class=afb&gt;at the same
time that an agent is actually experiencing the MDP&lt;/span&gt;. The agent\A1\AFs
experience can be used to determine the states to which the DP algorithm
applies its backups. At the same time, the latest value and policy information
from the DP algorithm can guide the agent\A1\AFs decision-making. For example, we
can apply backups to states as the agent visits them. This makes it possible to
&lt;span class=afb&gt;focus&lt;/span&gt; the DP algorithm\A1\AFs backups onto parts of the state
set that are most relevant to the agent. This kind of focusing is a repeated
theme in reinforcement learning.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection91&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l24 level1 lfo15;
tab-stops:37.2pt;background:transparent&#39;&gt;&lt;a name=bookmark62&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;4.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Generalized
Policy Iteration&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Policy iteration consists of two
simultaneous, interacting processes, one making the value function consistent
with the current policy (policy evaluation), and the other making the policy
greedy with respect to the current value function (policy improve&amp;shy;ment). In
policy iteration, these two processes alternate, each completing before the
other begins, but this is not really necessary. In value iteration, for
example, only a single iteration of policy evaluation is performed in between
each policy improve&amp;shy;ment. In asynchronous DP methods, the evaluation and
improvement processes are interleaved at an even finer grain. In some cases a
single state is updated in one process before returning to the other. As long
as both processes continue to update all states, the ultimate result is
typically the same\A1\AAconvergence to the optimal value function and an optimal
policy.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_682&#34; o:spid=&#34;_x0000_s1568&#34;
 type=&#34;#_x0000_t75&#34; alt=&#34;image29&#34; style=&#39;position:absolute;left:0;text-align:left;
 margin-left:306.35pt;margin-top:18pt;width:90.25pt;height:2in;z-index:251711274;
 visibility:visible;mso-wrap-style:square;mso-width-percent:0;
 mso-height-percent:0;mso-wrap-distance-left:5pt;mso-wrap-distance-top:0;
 mso-wrap-distance-right:5pt;mso-wrap-distance-bottom:0;
 mso-position-horizontal:absolute;mso-position-horizontal-relative:margin;
 mso-position-vertical:absolute;mso-position-vertical-relative:text;
 mso-width-percent:0;mso-height-percent:0;mso-width-relative:page;
 mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image032.png&#34;
  o:title=&#34;image29&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;We use the term &lt;span class=afb&gt;generalized policy
iteration&lt;/span&gt; (GPI) to refer to the general idea of letting policy
evaluation and policy im&amp;shy;provement processes interact, independent of the
granularity and other details of the two processes. Almost all reinforce&amp;shy;ment
learning methods are well described as GPI. That is, all have identifiable
policies and value functions, with the pol&amp;shy;icy always being improved with
respect to the value function and the value function always being driven toward
the value function for the policy, as suggested by the diagram to the right. It
is easy to see that if both the evaluation process and the improvement process
stabilize, that is, no longer produce changes, then the value function and
policy must be optimal.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The value function stabilizes only
when it is consistent with the current policy, and the policy stabilizes only
when it is greedy with respect to the current value function. Thus, both
processes stabilize only when a policy has been found that is greedy with
respect to its own evaluation function. This implies that the Bellman
optimality equation (4.1) holds, and thus that the policy and the value
function are optimal.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The evaluation and improvement
processes in GPI can be viewed as both compet&amp;shy;ing and cooperating. They compete
in the sense that they pull in opposing directions. Making the policy greedy
with respect to the value function typically makes the value function incorrect
for the changed policy, and making the value function consistent with the
policy typically causes that policy no longer to be greedy. In the long run,
however, these two processes interact to find a single joint solution: the
optimal value function and an optimal policy.&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:2.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;One might also think of the inter&amp;shy;action
between the evaluation and im&amp;shy;provement processes in GPI in terms of two
constraints or goals\A1\AAfor example, as two lines in two-dimensional space as
suggested by the diagram to the right.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:2.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_681&#34; o:spid=&#34;_x0000_s1567&#34;
 type=&#34;#_x0000_t75&#34; alt=&#34;image30&#34; style=&#39;position:absolute;left:0;text-align:left;
 margin-left:206.15pt;margin-top:3.1pt;width:172.8pt;height:105.6pt;z-index:251712298;
 visibility:visible;mso-wrap-style:square;mso-width-percent:0;
 mso-height-percent:0;mso-wrap-distance-left:5pt;mso-wrap-distance-top:0;
 mso-wrap-distance-right:5pt;mso-wrap-distance-bottom:0;
 mso-position-horizontal:absolute;mso-position-horizontal-relative:margin;
 mso-position-vertical:absolute;mso-position-vertical-relative:margin;
 mso-width-percent:0;mso-height-percent:0;mso-width-relative:page;
 mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image033.png&#34;
  o:title=&#34;image30&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Although the real geometry is much more complicated
than this, the diagram suggests what happens in the real case.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Each process drives the value function&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:21.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;or policy toward one of the lines representing a solution to one of
the two goals. The goals interact because the two lines are not orthogonal.
Driving directly toward one goal causes some movement away from the other goal.
Inevitably, however, the joint process is brought closer to the overall goal of
optimality. The arrows in this diagram correspond to the behavior of policy
iteration in that each takes the system all the way to achieving one of the two
goals completely. In GPI one could also take smaller, incomplete steps toward
each goal. In either case, the two processes together achieve the overall goal
of optimality even though neither is attempting to achieve it directly.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l24 level1 lfo15;
tab-stops:36.95pt;background:transparent&#39;&gt;&lt;a name=bookmark63&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;4.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Efficiency of
Dynamic Programming&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:2.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;DP may not be practical for very large
problems, but compared with other methods for solving MDPs, DP methods are
actually quite efficient. If we ignore a few tech&amp;shy;nical details, then the
(worst case) time DP methods take to find an optimal policy is polynomial in
the number of states and actions. If &lt;span class=afb&gt;n&lt;/span&gt; and k denote the
number of states and actions, this means that a DP method takes a number of
computational operations that is less than some polynomial function of n and k.
A DP method is guaranteed to find an optimal policy in polynomial time even
though the total number of (deterministic) policies is k&lt;sup&gt;n&lt;/sup&gt;. In this
sense, DP is exponentially faster than any direct search in policy space could
be, because direct search would have to exhaustively examine each policy to
provide the same guarantee. Linear program&amp;shy;ming methods can also be used to
solve MDPs, and in some cases their worst-case convergence guarantees are
better than those of DP methods. But linear program&amp;shy;ming methods become
impractical at a much smaller number of states than do DP methods (by a factor
of about 100). For the largest problems, only DP methods are feasible.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:2.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;DP is sometimes thought to be
of limited applicability because of the &lt;span class=afb&gt;curse of dimensionality&lt;/span&gt;,
the fact that the number of states often grows exponentially with the number of
state variables. Large state sets do create difficulties, but these are
inherent difficulties of the problem, not of DP as a solution method. In fact,
DP is comparatively better suited to handling large state spaces than competing
methods such as direct search and linear programming.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:2.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In practice, DP methods can be
used with today\A1\AFs computers to solve MDPs with millions of states. Both policy
iteration and value iteration are widely used, and it&lt;br clear=all
style=&#39;page-break-before:always&#39;&gt;
is not clear which, if either, is better in general. In practice, these methods
usually converge much faster than their theoretical worst-case run times,
particularly if they are started with good initial value functions or policies.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:30.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;On problems with large state spaces, &lt;span class=afb&gt;asynchronous&lt;/span&gt;
DP methods are often pre&amp;shy;ferred. To complete even one sweep of a synchronous
method requires computation and memory for every state. For some problems, even
this much memory and compu&amp;shy;tation is impractical, yet the problem is still
potentially solvable because relatively few states occur along optimal solution
trajectories. Asynchronous methods and other variations of GPI can be applied
in such cases and may find good or optimal policies much faster than synchronous
methods can.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l24 level1 lfo15;
tab-stops:38.2pt;background:transparent&#39;&gt;&lt;a name=bookmark64&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;4.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Summary&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In this chapter we have become familiar with the
basic ideas and algorithms of dynamic programming as they relate to solving
finite MDPs. &lt;span class=afb&gt;Policy evaluation&lt;/span&gt; refers to the (typically)
iterative computation of the value functions for a given policy. &lt;span
class=afb&gt;Policy improvement&lt;/span&gt; refers to the computation of an improved
policy given the value function for that policy. Putting these two computations
together, we obtain &lt;span class=afb&gt;policy iteration&lt;/span&gt; and &lt;span
class=afb&gt;value iteration&lt;/span&gt;, the two most popular DP methods. Either of
these can be used to reliably compute optimal policies and value functions for
finite MDPs given complete knowledge of the MDP.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Classical DP methods operate in sweeps through
the state set, performing a &lt;span class=afb&gt;full backup&lt;/span&gt; operation on
each state. Each backup updates the value of one state based on the values of
all possible successor states and their probabilities of occurring. Full
backups are closely related to Bellman equations: they are little more than
these equations turned into assignment statements. When the backups no longer
result in any changes in value, convergence has occurred to values that satisfy
the corre&amp;shy;sponding Bellman equation. Just as there are four primary value
functions (v^, v*, qn, and &lt;span class=1pt2&gt;q*),&lt;/span&gt; there are four
corresponding Bellman equations and four correspond&amp;shy;ing full backups. An
intuitive view of the operation of backups is given by &lt;span class=afb&gt;backup
diagrams.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Insight into DP methods and, in fact, into almost
all reinforcement learning meth&amp;shy;ods, can be gained by viewing them as &lt;span
class=afb&gt;generalized policy iteration&lt;/span&gt; (GPI). GPI is the general idea of
two interacting processes revolving around an approximate policy and an
approximate value function. One process takes the policy as given and performs
some form of policy evaluation, changing the value function to be more like the
true value function for the policy. The other process takes the value function
as given and performs some form of policy improvement, changing the policy to
make it bet&amp;shy;ter, assuming that the value function is its value function.
Although each process changes the basis for the other, overall they work
together to find a joint solution: a policy and value function that are
unchanged by either process and, consequently, are optimal. In some cases, GPI
can be proved to converge, most notably for the classical DP methods that we
have presented in this chapter. In other cases conver&amp;shy;gence has not been
proved, but still the idea of GPI improves our understanding of the methods.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;It is not necessary to perform
DP methods in complete sweeps through the state set. &lt;span class=afb&gt;Asynchronous
DP&lt;/span&gt; methods are in-place iterative methods that back up states in an
arbitrary order, perhaps stochastically determined and using out-of-date infor&amp;shy;mation.
Many of these methods can be viewed as fine-grained forms of GPI.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Finally, we note one last special property of DP methods. All of
them update estimates of the values of states based on estimates of the values
of successor states. That is, they update estimates on the basis of other
estimates. We call this general idea &lt;span class=afb&gt;bootstrapping&lt;/span&gt;. Many
reinforcement learning methods perform bootstrapping, even those that do not
require, as DP requires, a complete and accurate model of the environment. In
the next chapter we explore reinforcement learning methods that do not require
a model and do not bootstrap. In the chapter after that we explore methods that
do not require a model but do bootstrap. These key features and properties are
separable, yet can be mixed in interesting combinations.&lt;/span&gt;&lt;/p&gt;

&lt;p class=3e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.05pt;
margin-left:36.0pt;text-indent:-36.0pt;line-height:13.0pt;mso-line-height-rule:
exactly;mso-pagination:lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark65&gt;&lt;span class=32&gt;&lt;span lang=EN-US&gt;Bibliographical and Historical
Remarks&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The term \A1\B0dynamic programming\A1\B1 is due
to Bellman (1957a), who showed how these methods could be applied to a wide
range of problems. Extensive treatments of DP can be found in many texts,
including Bertsekas (2005, 2012), Bertsekas and Tsitsiklis (1996), Dreyfus and
Law (1977), Ross (1983), White (1969), and Whittle (1982, 1983). Our interest
in DP is restricted to its use in solving MDPs, but DP also applies to other
types of problems. Kumar and Kanal (1988) provide a more general look at DP.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;To the best of our knowledge, the first connection between DP and
reinforcement learning was made by Minsky (1961) in commenting on Samuel\A1\AFs
checkers player. In a footnote, Minsky mentioned that it is possible to apply
DP to problems in which Samuel\A1\AFs backing-up process can be handled in closed
analytic form. This remark may have misled artificial intelligence researchers
into believing that DP was restricted to analytically tractable problems and
therefore largely irrelevant to arti&amp;shy;ficial intelligence. Andreae (1969b)
mentioned DP in the context of reinforcement learning, specifically policy
iteration, although he did not make specific connections between DP and
learning algorithms. Werbos (1977) suggested an approach to ap&amp;shy;proximating DP
called \A1\B0heuristic dynamic programming\A1\B1 that emphasizes gradient- descent
methods for continuous-state problems (Werbos, 1982, 1987, 1988, 1989, 1992).
These methods are closely related to the reinforcement learning algorithms that
we discuss in this book. Watkins (1989) was explicit in connecting reinforce&amp;shy;ment
learning to DP, characterizing a class of reinforcement learning methods as
\A1\B0incremental dynamic programming.\A1\B1&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;4.1-4 These sections describe
well-established DP algorithms that are covered in any of the general DP
references cited above. The policy improvement the&amp;shy;orem and the policy
iteration algorithm are due to Bellman (1957a) and&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection92&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Howard (1960). Our presentation was influenced by the local view of
policy improvement taken by Watkins (1989). Our discussion of value iteration
as a form of truncated policy iteration is based on the approach of Puterman
and Shin (1978), who presented a class of algorithms called &lt;span class=afb&gt;modified
policy itera&amp;shy;tion&lt;/span&gt;, which includes policy iteration and value iteration
as special cases. An analysis showing how value iteration can be made to find
an optimal policy in finite time is given by Bertsekas (1987).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Iterative policy evaluation is an example of a classical successive
approxima&amp;shy;tion algorithm for solving a system of linear equations. The version
of the algorithm that uses two arrays, one holding the old values while the
other is updated, is often called a &lt;span class=afb&gt;Jacobi-style&lt;/span&gt;
algorithm, after Jacobi\A1\AFs classical use of this method. It is also sometimes
called a &lt;span class=afb&gt;synchronous&lt;/span&gt; algorithm be&amp;shy;cause it can be
performed in parallel, with separate processors simultaneously updating the
values of individual states using input from other processors. The second array
is needed to simulate this parallel computation sequentially. The in-place
version of the algorithm is often called a &lt;span class=afb&gt;Gauss-Seidel-style&lt;/span&gt;
algo&amp;shy;rithm after the classical Gauss-Seidel algorithm for solving systems of
linear equations. In addition to iterative policy evaluation, other DP
algorithms can be implemented in these different versions. Bertsekas and
Tsitsiklis (1989) provide excellent coverage of these variations and their
performance differ&amp;shy;ences.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l14 level1 lfo17;
tab-stops:36.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;4.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Asynchronous DP algorithms are
due to Bertsekas (1982, 1983), who also called them distributed DP algorithms.
The original motivation for asyn&amp;shy;chronous DP was its implementation on a multiprocessor
system with com&amp;shy;munication delays between processors and no global
synchronizing clock. These algorithms are extensively discussed by Bertsekas
and Tsitsiklis (1989). Jacobi-style and Gauss-Seidel-style DP algorithms are
special cases of the asynchronous version. Williams and Baird (1990) presented
DP algorithms that are asynchronous at a finer grain than the ones we have
discussed: the backup operations themselves are broken into steps that can be
performed asynchronously.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l41 level1 lfo18;tab-stops:36.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;4.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;This section, written with the
help of Michael Littman, is based on Littman, Dean, and Kaelbling (1995). The
phrase \A1\B0curse of dimensionality\A1\B1 is due to Bellman (1957).&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f style=&#39;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
right 231.1pt 242.15pt 306.7pt 398.65pt;background:transparent&#39;&gt;&lt;span class=41&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW;font-style:normal&#39;&gt;100&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=44&gt;&lt;span lang=EN-US&gt;CHAPTER&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;4.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;DYNAMIC&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;PROGRAMMING&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;i&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/i&gt;&lt;/p&gt;

&lt;div class=WordSection93&gt;

&lt;p class=8a style=&#39;margin-bottom:29.1pt;line-height:19.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Chapter 5&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f1 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:37.55pt;
margin-left:0cm;line-height:22.0pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark66&gt;&lt;span lang=EN-US&gt;Monte Carlo Methods&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In this chapter we consider our first learning
methods for estimating value functions and discovering optimal policies. Unlike
the previous chapter, here we do not as&amp;shy;sume complete knowledge of the
environment. Monte Carlo methods require only &lt;span class=aff7&gt;experience&lt;/span&gt;\A1\AAsample
sequences of states, actions, and rewards from actual or simu&amp;shy;lated interaction
with an environment. Learning from &lt;span class=aff7&gt;actual&lt;/span&gt; experience is
striking because it requires no prior knowledge of the environment\A1\AFs dynamics,
yet can still attain optimal behavior. Learning from &lt;span class=aff7&gt;simulated&lt;/span&gt;
experience is also powerful. Al&amp;shy;though a model is required, the model need only
generate sample transitions, not the complete probability distributions of all
possible transitions that is required for dynamic programming (DP). In
surprisingly many cases it is easy to generate expe&amp;shy;rience sampled according to
the desired probability distributions, but infeasible to obtain the
distributions in explicit form.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Monte Carlo methods are ways of solving the
reinforcement learning problem based on averaging sample returns. To ensure
that well-defined returns are available, here we define Monte Carlo methods
only for episodic tasks. That is, we assume experience is divided into
episodes, and that all episodes eventually terminate no matter what actions are
selected. Only on the completion of an episode are value estimates and policies
changed. Monte Carlo methods can thus be incremental in an episode-by- episode
sense, but not in a step-by-step (online) sense. The term \A1\B0Monte Carlo\A1\B1 is
often used more broadly for any estimation method whose operation involves a
significant random component. Here we use it specifically for methods based on
averaging complete returns (as opposed to methods that learn from partial
returns, considered in the next chapter).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Monte Carlo methods sample and average &lt;span
class=aff7&gt;returns&lt;/span&gt; for each state-action pair much like the bandit
methods we explored in Chapter 2 sample and average &lt;span class=aff7&gt;rewards&lt;/span&gt;
for each action. The main difference is that now there are multiple states,
each acting like a different bandit problem (like an associative-search or
contextual bandit) and that the different bandit problems are interrelated.
That is, the return after taking an action in one state depends on the actions
taken in later states in the same episode. Because all the action selections
are undergoing learning, the problem becomes nonstationary from the point of
view of the earlier state.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection94&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.35pt;
margin-left:0cm;text-indent:10.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;To handle the
nonstationarity, we adapt the idea of general policy iteration (GPI) developed
in Chapter &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;4 &lt;/span&gt;&lt;span lang=EN-US&gt;for DP. Whereas there we &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;computed&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;value functions from knowledge of the MDP, here we &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;learn&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;value functions from sample returns with the MDP.
The value functions and corresponding policies still interact to attain
optimality in essentially the same way (GPI). As in the DP chapter, first we
consider the prediction problem (the computation of Vn and q^ for a fixed
arbitrary policy n) then policy improvement, and, finally, the control problem
and its solution by GPI. Each of these ideas taken from DP is extended to the
Monte Carlo case in which only sample experience is available.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l76 level1 lfo19;
tab-stops:36.7pt;background:transparent&#39;&gt;&lt;a name=bookmark67&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;5.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Monte Carlo Prediction&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;We begin by
considering Monte Carlo methods for learning the state-value function for a
given policy. Recall that the value of a state is the expected return\A1\AAexpected
cumulative future discounted reward\A1\AAstarting from that state. An obvious way to
estimate it from experience, then, is simply to average the returns observed
after visits to that state. As more returns are observed, the average should
converge to the expected value. This idea underlies all Monte Carlo methods.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.15pt;
margin-left:0cm;text-indent:10.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;In particular,
suppose we wish to estimate &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;n(&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;), the
value of a state &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;under
policy &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;, given a set of
episodes obtained by following &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;and passing through &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;. Each occurrence of state &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;in an episode is called a &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;visit&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;to &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;. Of
course, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;may be visited multiple
times in the same episode; let us call the first time it is visited in an
episode the &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;first visit&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;to &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;. The &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;first-visit MC method&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;estimates &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=21MingLiU1&gt;&lt;span
style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;آ&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;) as
the average of the returns following first visits to &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;, whereas the &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;every-visit MC method &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;averages the returns following all visits to &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;. These two Monte Carlo (MC) methods are very similar
but have slightly different theoretical properties. First-visit MC has been
most widely studied, dating back to the 1940s, and is the one we focus on in
this chapter. Every-visit MC extends more naturally to function approximation
and eligibility traces, as discussed in Chapters 9 and 12. First-visit MC is
shown in procedural form in the box.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:4.45pt;text-align:justify;text-justify:
inter-ideograph;text-indent:10.0pt;line-height:9.5pt;mso-line-height-rule:exactly;
background:black&#39;&gt;&lt;span class=af7&gt;&lt;span lang=EN-US&gt;First-visit MC prediction,
for estimating &lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook6&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;V &lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUf1&gt;&lt;span
style=&#39;font-size:7.5pt;mso-ansi-language:ZH-TW&#39;&gt;\B0\D1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:10.0pt;line-height:12.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:194.0pt;margin-bottom:9.2pt;
margin-left:27.0pt;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;n &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=ZH-TW style=&#39;font-size:7.5pt;mso-ansi-language:
ZH-TW&#39;&gt;\A8D &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;policy to be evaluated V &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=ZH-TW style=&#39;font-size:7.5pt;mso-ansi-language:
ZH-TW&#39;&gt;\A8D &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;an arbitrary state-value function
Returns(s) &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=ZH-TW
style=&#39;font-size:7.5pt;mso-ansi-language:ZH-TW&#39;&gt;\A8D &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;an empty list, for all &lt;span class=aff7&gt;s&lt;/span&gt; &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUf2&gt;&lt;span style=&#39;font-size:8.0pt;mso-ansi-language:ZH-TW&#39;&gt;\B8\F7&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:10.0pt;line-height:11.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat forever:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:27.0pt;text-indent:0cm;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Generate
an episode using n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:27.0pt;text-indent:0cm;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For each
state s appearing in the episode:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:159.0pt;margin-bottom:0cm;
margin-left:44.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=aff7&gt;&lt;span
lang=EN-US&gt;G&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span
lang=ZH-TW style=&#39;font-size:7.5pt;mso-ansi-language:ZH-TW&#39;&gt;\A8D &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;return following the first occurrence of &lt;span class=aff7&gt;s &lt;/span&gt;Append
G to Returns(s)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-indent:0cm;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;V(s) &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=ZH-TW style=&#39;font-size:7.5pt;mso-ansi-language:
ZH-TW&#39;&gt;\A8D &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;average(Returns(s))&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Both first-visit MC and
every-visit MC converge to &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;v^&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) as the number of visits (or first visits) to &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;goes to infinity. This is easy to see for the case of first-visit
MC. In this case each return is an independent, identically distributed
estimate of &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;vn &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) with finite variance. By the law of large numbers the sequence of
averages of these estimates converges to their expected value. Each average is
itself an unbiased estimate, and the standard deviation of its error falls as &lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;/&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;y&lt;sup&gt;/&lt;/sup&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, where &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;is the number of returns averaged (i.e., the estimate is said to &lt;span
class=aff7&gt;converge quadratically&lt;/span&gt;). Every-visit MC is less
straightforward, but its estimates also converge quadratically to &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;v^&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) (Singh and Sutton,
1996).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:7.25pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The use of Monte Carlo methods is best
illustrated through an example.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 5.1: Blackjack The object of
the popular casino card game of &lt;span class=aff7&gt;blackjack &lt;/span&gt;is to obtain
cards the sum of whose numerical values is as great as possible without
exceeding &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;21&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. All face cards count as &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, and an ace can count
either as &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; or as &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. We consider the version in which each
player competes independently against the dealer. The game begins with two
cards dealt to both dealer and player. One of the dealer\A1\AFs cards is face up and
the other is face down. If the player has 21 immediately (an ace and a
10-card), it is called a &lt;span class=aff7&gt;natural.&lt;/span&gt; He then wins unless
the dealer also has a natural, in which case the game is a draw. If the player
does not have a natural, then he can request additional cards, one by one (&lt;span
class=aff7&gt;hits&lt;/span&gt;), until he either stops (&lt;span class=aff7&gt;sticks&lt;/span&gt;)
or exceeds 21 &lt;span class=aff7&gt;(goes bust&lt;/span&gt;). If he goes bust, he loses;
if he sticks, then it becomes the dealer\A1\AFs turn. The dealer hits or sticks
according to a fixed strategy without choice: he sticks on any sum of 17 or
greater, and hits otherwise. If the dealer goes bust, then the player wins;
otherwise, the outcome\A1\AAwin, lose, or draw\A1\AAis determined by whose final sum is
closer to &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;21&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Playing blackjack is naturally
formulated as an episodic finite MDP. Each game of blackjack is an episode.
Rewards of +1, \A1\AA1, and 0 are given for winning, losing, and drawing,
respectively. All rewards within a game are zero, and we do not discount (&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Y &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;= 1); therefore these terminal rewards are also the returns. The
player\A1\AFs actions are to hit or to stick. The states depend on the player\A1\AFs
cards and the dealer\A1\AFs showing card. We assume that cards are dealt from an
infinite deck (i.e., with replacement) so that there is no advantage to keeping
track of the cards already dealt. If the player holds an ace that he could
count as &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; without going bust, then the ace is said to be &lt;span class=aff7&gt;usable&lt;/span&gt;.
In this case it is always counted as 11 because counting it as 1 would make the
sum &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; or less, in which case there is no decision to be made because,
obviously, the player should always hit. Thus, the player makes decisions on
the basis of three variables: his current sum (&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;21&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;), the dealer\A1\AFs one showing card (ace-&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;), and
whether or not he holds a usable ace. This makes for a total of 200 states.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Consider the policy that
sticks if the player\A1\AFs sum is 20 or 21, and otherwise hits. To find the
state-value function for this policy by a Monte Carlo approach, one simulates
many blackjack games using the policy and averages the returns following each
state. Note that in this task the same state never recurs within one episode,
so there is no difference between first-visit and every-visit MC methods. In
this way, we obtained the estimates of the state-value function shown in Figure
5.1. The estimates for states with a usable ace are less certain and less
regular because these&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection95&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:105.35pt;mso-element-frame-height:
80.65pt;mso-element-frame-hspace:43.95pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:87.2pt;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=199 height=108&gt;
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  &lt;td valign=top align=left height=108 style=&#39;padding-top:0cm;padding-right:
  43.95pt;padding-bottom:0cm;padding-left:43.95pt&#39;&gt;
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  style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_14&#34; o:spid=&#34;_x0000_i1109&#34;
   type=&#34;#_x0000_t75&#34; alt=&#34;image31&#34; style=&#39;width:105.75pt;height:81pt;
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&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:28.3pt;mso-element-frame-height:
19.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
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&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=38 height=25&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=25 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=8b align=left style=&#39;text-align:left;line-height:9.0pt;mso-line-height-rule:
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  &lt;p class=8b align=left style=&#39;margin-left:6.0pt;text-align:left;line-height:
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  lang=EN-US&gt;ace&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

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  mso-element-frame-width:27.1pt;mso-element-frame-height:30.45pt;mso-element-wrap:
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  column;mso-element-left:43.75pt;mso-element-top:21.5pt&#39;&gt;&lt;span class=81&gt;&lt;span
  lang=EN-US&gt;No&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=8b align=left style=&#39;margin-left:3.0pt;text-align:left;line-height:
  10.1pt;mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:27.1pt;mso-element-frame-height:30.45pt;mso-element-wrap:
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  column;mso-element-left:43.75pt;mso-element-top:21.5pt&#39;&gt;&lt;span class=81&gt;&lt;span
  lang=EN-US&gt;usable&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=8b align=left style=&#39;margin-left:8.0pt;text-align:left;line-height:
  10.1pt;mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:27.1pt;mso-element-frame-height:30.45pt;mso-element-wrap:
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  column;mso-element-left:43.75pt;mso-element-top:21.5pt&#39;&gt;&lt;span class=81&gt;&lt;span
  lang=EN-US&gt;ace&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection96&gt;

&lt;p class=MsoNormal style=&#39;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;margin-top:.4pt;margin-right:0cm;margin-bottom:.4pt;
margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection97&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:19.85pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Figure 5.1: Approximate state-value functions for the blackjack
policy that sticks only on 20 or 21, computed by Monte Carlo policy evaluation.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;states are less common. In any event, after
500,000 games the value function is very well approximated.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Although we have complete knowledge of the environment in this task,
it would not be easy to apply DP methods to compute the value function. DP
methods require the distribution of next events&lt;/span&gt;&lt;span class=MingLiUf3&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;in particular, they require the quantities &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;s&#39;, r|s, a&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)\A1\AAand it is
not easy to determine these for blackjack. For example, suppose the player\A1\AFs
sum is 14 and he chooses to stick. What is his expected reward as a function of
the dealer\A1\AFs showing card? All of these expected rewards and transition
probabilities must be computed &lt;span class=aff7&gt;before&lt;/span&gt; DP can be
applied, and such computations are often complex and error-prone. In contrast,
generating the sample games required by Monte Carlo methods is easy. This is
the case surprisingly often; the ability of Monte Carlo methods to work with
sample episodes alone can be a significant advantage even when one has complete
knowledge of the environment\A1\AFs dynamics.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Can we generalize the idea of backup diagrams to
Monte Carlo algorithms? The general idea of a backup diagram is to show at the
top the root node to be updated and to show below all the transitions and leaf
nodes whose rewards and estimated values contribute to the update. For Monte
Carlo estimation of v^, the root is a state node, and below it is the entire
trajectory of transitions along a particular single episode, ending at the
terminal state, as in Figure 5.2. Whereas the DP diagram (Figure 3.4-left)
shows all possible transitions, the Monte Carlo diagram shows only those
sampled on the one episode. Whereas the DP diagram includes only one-step
transitions, the Monte Carlo diagram goes all the way to the end of the
episode. These differences in the diagrams accurately reflect the fundamental
differences between the algorithms.&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=center style=&#39;margin-top:0cm;margin-right:1.0pt;
margin-bottom:19.25pt;margin-left:0cm;text-align:center;text-indent:0cm;
line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Figure 5.2: The backup diagram for Monte Carlo estimation of &lt;span
class=aff7&gt;V&lt;/span&gt;&lt;sub&gt;n&lt;/sub&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;An important fact about Monte Carlo methods is that the estimates
for each state are independent. The estimate for one state does not build upon
the estimate of any other state, as is the case in DP. In other words, Monte
Carlo methods do not &lt;span class=aff7&gt;bootstrap&lt;/span&gt; as we defined it in the
previous chapter.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In particular, note that the computational expense of estimating the
value of a single state is independent of the number of states. This can make
Monte Carlo methods particularly attractive when one requires the value of only
one or a subset of states. One can generate many sample episodes starting from
the states of interest, averaging returns from only these states ignoring all
others. This is a third advantage Monte Carlo methods can have over DP methods
(after the ability to learn from actual experience and from simulated
experience).&lt;/span&gt;&lt;/p&gt;

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  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=MsoNormal align=center style=&#39;text-align:center&#39;&gt;&lt;span lang=EN-US
    style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_80&#34; o:spid=&#34;_x0000_i1039&#34;
     type=&#34;#_x0000_t75&#34; alt=&#34;image35&#34; style=&#39;width:186.75pt;height:128.25pt;
     visibility:visible;mso-wrap-style:square&#39;&gt;
     &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image038.jpg&#34;
      o:title=&#34;image35&#34;/&gt;
    &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff8 align=left style=&#39;text-align:left;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=Exact0&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;A bubble on a wire
    loop&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Example 5.2: Soap Bubble&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
center 248.9pt 276.05pt 294.3pt 316.35pt 346.1pt 374.7pt right 403.25pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Suppose a wire frame forming a closed
loop is dunked in soapy water to form a soap surface or bubble conforming at
its edges to the wire frame. If the geometry of the wire frame is irregular but
known, how can you compute the shape of the surface? The shape has the property
that the total force on each point exerted by neighboring points is zero (or
else the shape would change). This means that the surface\A1\AFs height at any point
is the aver&amp;shy;age of its heights at points in a small circle around that point.
In addition, the surface must meet at its boundaries with the wire frame. The
usual approach to problems of this kind is to put a grid over the area covered
by the surface and solve for its height at the grid points by an iterative
computation. Grid points at the boundary are&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;forced&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;to&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;the&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;wire&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;frame,&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;and&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;all&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 265.5pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;others are adjusted
toward the average of the heights&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;of their
four nearest neighbors.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection98&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;This process then iterates, much like
DP\A1\AFs iterative policy evaluation, and ultimately converges to a close
approximation to the desired surface.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;This is similar to the kind of
problem for which Monte Carlo methods were origi&amp;shy;nally designed. Instead of the
iterative computation described above, imagine stand&amp;shy;ing on the surface and
taking a random walk, stepping randomly from grid point to neighboring grid
point, with equal probability, until you reach the boundary. It turns out that
the expected value of the height at the boundary is a close approximation to
the height of the desired surface at the starting point (in fact, it is exactly
the value computed by the iterative method described above). Thus, one can
closely approximate the height of the surface at a point by simply averaging
the bound&amp;shy;ary heights of many walks started at the point. If one is interested
in only the value at one point, or any fixed small set of points, then this
Monte Carlo method can be far more efficient than the iterative method based on
local consistency.&lt;/span&gt;&lt;/p&gt;

&lt;p class=401 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.35pt;
margin-left:0cm;line-height:13.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.55pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;tab-stops:right 398.9pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 5.1 Consider the diagrams on
the right in Figure 5.1. Why does the estimated value function jump up for the
last two rows in the rear? Why does it drop off for the whole last row on the
left? Why are the frontmost values higher in the upper diagrams than in the
lower?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l76 level1 lfo19;
tab-stops:36.7pt;background:transparent&#39;&gt;&lt;a name=bookmark68&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;5.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Monte Carlo Estimation of
Action Values&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If a model is not available, then it
is particularly useful to estimate &lt;span class=aff7&gt;action&lt;/span&gt; values (the
values of state-action pairs) rather than &lt;span class=aff7&gt;state&lt;/span&gt; values.
With a model, state values alone are sufficient to determine a policy; one
simply looks ahead one step and chooses whichever action leads to the best
combination of reward and next state, as we did in the chapter on DP. Without a
model, however, state values alone are not sufficient. One must explicitly
estimate the value of each action in order for the values to be useful in
suggesting a policy. Thus, one of our primary goals for Monte Carlo methods is
to estimate &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;q*&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. To achieve this, we
first consider the policy evaluation problem for action values.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The policy evaluation problem
for action values is to estimate &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;q^&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;s, a&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;), the expected return when starting in state &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, taking action &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, and thereafter
following policy &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. The Monte Carlo
methods for this are essentially the same as just presented for state values,
except now we talk about visits to a state-action pair rather than to a state.
A state-action pair &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;s, a &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is said to be
visited in an episode if ever the state &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is visited
and action &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;a &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is taken in it. The
every-visit MC method estimates the value of a state-action pair as the average
of the returns that have followed all the visits to it. The first-visit MC
method averages the returns following the first time in each episode that the
state was visited and the action was selected. These methods converge
quadratically, as before, to the true expected values as the number of visits
to each state-action pair approaches infinity.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-right:1.0pt;text-align:right;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The only complication is that many state-action
pairs may never be visited. If &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is a
deterministic policy, then in following &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;one will
observe returns only for&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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     style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;one of the actions from each
     state. With no returns to average, the Monte Carlo estimates of the other
     actions will not improve with experience. This is a serious problem
     because the purpose of learning action values is to help in choosing among
     the actions available in each state. To compare alternatives we need to
     estimate the value of &lt;/span&gt;&lt;/span&gt;&lt;span class=affa&gt;&lt;span lang=EN-US
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     the actions from each state, not just the one we currently favor.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
     &lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:6.0pt;margin-bottom:
     3.0pt;margin-left:5.0pt;text-align:justify;text-justify:inter-ideograph;
     text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;
     background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
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     class=affa&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;maintaining
     exploration&lt;/span&gt;&lt;/span&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
     style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;, as discussed in the context
     of the k-armed bandit problem in Chapter 2. For policy evaluation to work
     for action values, we must assure continual exploration. One way to do
     this is by specifying that the episodes &lt;/span&gt;&lt;/span&gt;&lt;span class=affa&gt;&lt;span
     lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;start in a
     state-action pair&lt;/span&gt;&lt;/span&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
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     nonzero probability of being selected as the start. This guarantees that
     all state-action pairs will be visited an infinite number of times in the
     limit of an infinite number of episodes. We call this the assumption of &lt;/span&gt;&lt;/span&gt;&lt;span
     class=affa&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;exploring
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     &lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:6.0pt;margin-bottom:
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     background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
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     starts is sometimes useful, but of course it cannot be relied upon in
     general, particularly when learning directly from actual interaction with
     an environment. In that case the starting conditions are unlikely to be so
     helpful. The most common alternative approach to assuring that all
     state-action pairs are encountered is to consider only policies that are
     stochastic with a nonzero probability of selecting all actions in each
     state. We discuss two important variants of this approach in later
     sections. For now, we retain the assumption of exploring starts and
     complete the presentation of a full Monte Carlo control method.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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     how Monte Carlo estimation can be used in control, that is, to approximate
     optimal poli&amp;shy;cies. The overall idea is to proceed according to the same
     pattern as in the DP chapter, that is, according to the idea of
     generalized policy iteration (GPI). In GPI one maintains both an approximate
     policy and an approximate value func&amp;shy;tion. The value function is
     repeatedly altered to more closely approximate the value function for the
     current policy, and the policy is repeatedly improved with respect to the
     current value function, as suggested by the diagram to the right. These
     two kinds of changes work against each other to some extent, as each
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     policy and value function to approach optimality.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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     Monte Carlo version of classical policy iteration. In this method, we
     perform alternating complete steps of policy evaluation and policy
     improvement, beginning with an arbitrary policy no and ending with the
     optimal policy and optimal action-value function:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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class=MingLiUf5&gt;&lt;span style=&#39;font-size:7.5pt;mso-ansi-language:ZH-TW&#39;&gt;\A1\A2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&#39; &#39; &#39;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUf5&gt;&lt;span style=&#39;font-size:7.5pt;mso-ansi-language:ZH-TW&#39;&gt;\A1\A2&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;* &lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUf5&gt;&lt;span style=&#39;font-size:7.5pt;mso-ansi-language:ZH-TW&#39;&gt;\A1\A2&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection101&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;where &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;\A1\AA^ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;denotes a
complete policy evaluation and &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;\A1\AA^ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;denotes a complete
pol&amp;shy;icy improvement. Policy evaluation is done exactly as described in the
preceding section. Many episodes are experienced, with the approximate
action-value func&amp;shy;tion approaching the true function asymptotically. For the
moment, let us assume that we do indeed observe an infinite number of episodes
and that, in addition, the episodes are generated with exploring starts. Under
these assumptions, the Monte Carlo methods will compute each &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;^&lt;sub&gt;fc&lt;/sub&gt; exactly, for arbitrary &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;k.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Policy improvement is done by making the policy greedy with respect
to the current value function. In this case we have an &lt;span class=aff7&gt;action&lt;/span&gt;-value
function, and therefore no model is needed to construct the greedy policy. For
any action-value function &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, the
corresponding greedy policy is the one that, for each &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;s G &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;S, deterministically chooses an action with maximal action-value:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:right 400.95pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;n(s) ==
argmaxq(s, a).&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(5.1)&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection102&gt;

&lt;p class=MsoNormal style=&#39;margin-top:.45pt;margin-right:0cm;margin-bottom:.45pt;
margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection103&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:10.75pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Policy improvement then with respect to q^&lt;sub&gt;fc&lt;/sub&gt;. The &lt;/span&gt;&lt;span
class=MingLiUf7&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;آ&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;k and nk&lt;/span&gt;&lt;span class=MingLiUf7&gt;&lt;span style=&#39;font-size:11.5pt;
mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; because, for&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-top:0cm;margin-right:2.0pt;
margin-bottom:27.55pt;margin-left:0cm;text-align:right;text-indent:0cm;
line-height:11.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;q&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;nfc &lt;/span&gt;&lt;span class=MingLiUf7&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:11.5pt&#39;&gt;(s&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=MingLiUf7&gt;&lt;span lang=EN-US style=&#39;font-size:11.5pt&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUf7&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;amp;&lt;/span&gt;&lt;span class=MingLiUf7&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=2pt&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(s))&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;=&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=right style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:
6.05pt;margin-left:0cm;text-align:right;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;&amp;gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-right:2.0pt;text-align:right;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2pt&gt;&lt;span lang=EN-US&gt;&amp;gt;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.15pt;
margin-left:4.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;can be done by constructing each nk&lt;/span&gt;&lt;span class=MingLiUf7&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; as the greedy policy policy improvement theorem (Section 4.2) then
applies to all s &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;S,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:4.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;qn&lt;sub&gt;fc&lt;/sub&gt; (s, argmaxq^&lt;sub&gt;fc&lt;/sub&gt; (s,a))&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:48.0pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:4.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;max qn&lt;sub&gt;k&lt;/sub&gt; (s, a)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:4.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:15.6pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:4.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:15.6pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;q&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;nk &lt;sup&gt;(s&lt;/sup&gt;,
&lt;sup&gt;n&lt;/sup&gt;k &lt;sup&gt;(s))&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:4.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:15.6pt;mso-line-height-rule:exactly;mso-list:l91 level1 lfo20;
tab-stops:9.3pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;n&lt;sub&gt;fc&lt;/sub&gt;&lt;sup&gt;(s)&lt;/sup&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection104&gt;

&lt;p class=MsoNormal style=&#39;line-height:9.2pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection105&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;As we discussed in the previous
chapter, the theorem assures us that each nk&lt;/span&gt;&lt;span class=MingLiUf7&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; is uniformly better than nk, or just as good as nk, in which case
they are both optimal policies. This in turn assures us that the overall
process converges to the optimal policy and optimal value function. In this way
Monte Carlo methods can be used to find optimal policies given only sample
episodes and no other knowledge of the environment\A1\AFs dynamics.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;We made two unlikely
assumptions above in order to easily obtain this guarantee of convergence for
the Monte Carlo method. One was that the episodes have exploring starts, and
the other was that policy evaluation could be done with an infinite number of
episodes. To obtain a practical algorithm we will have to remove both
assumptions. We postpone consideration of the first assumption until later in
this chapter.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For now we focus on the
assumption that policy evaluation operates on an infinite number of episodes.
This assumption is relatively easy to remove. In fact, the same issue arises
even in classical DP methods such as iterative policy evaluation, which also
converge only asymptotically to the true value function. In both DP and Monte
Carlo cases there are two ways to solve the problem. One is to hold firm to the
idea of approximating q^&lt;sub&gt;fc&lt;/sub&gt; in each policy evaluation. Measurements
and assumptions are made to obtain bounds on the magnitude and probability of
error in the estimates, and then sufficient steps are taken during each policy
evaluation to assure that these bounds are sufficiently small. This approach
can probably be made &lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection106&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;completely satisfactory in the
sense of guaranteeing correct convergence up to some level of approximation.
However, it is also likely to require far too many episodes to be useful in
practice on any but the smallest problems.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:10.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The second approach to avoiding
the infinite number of episodes nominally required for policy evaluation is to
forgo trying to complete policy evaluation before returning to policy
improvement. On each evaluation step we move the value function &lt;span
class=aff7&gt;toward &lt;/span&gt;q^&lt;sub&gt;fc&lt;/sub&gt;, but we do not expect to actually get
close except over many steps. We used this idea when we first introduced the
idea of GPI in Section 4.6. One extreme form of the idea is value iteration, in
which only one iteration of iterative policy evaluation is performed between
each step of policy improvement. The in-place version of value iteration is
even more extreme; there we alternate between improvement and evaluation steps
for single states.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:10.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For Monte Carlo policy
evaluation it is natural to alternate between evaluation and improvement on an
episode-by-episode basis. After each episode, the observed returns are used for
policy evaluation, and then the policy is improved at all the states visited in
the episode. A complete simple algorithm along these lines, which we call &lt;span
class=aff7&gt;Monte Carlo ES,&lt;/span&gt; for Monte Carlo with Exploring Starts, is
given in the box.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:36.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
10.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In Monte Carlo ES, all the returns for each state-action pair are
accumulated and averaged, irrespective of what policy was in force when they
were observed. It is easy to see that Monte Carlo ES cannot converge to any
suboptimal policy. If it did, then the value function would eventually converge
to the value function for that policy, and that in turn would cause the policy
to change. Stability is achieved only when both the policy and the value
function are optimal. Convergence to this optimal fixed point seems inevitable
as the changes to the action-value function decrease over time, but has not yet
been formally proved. In our opinion, this is one of the most fundamental open
theoretical questions in reinforcement learning (for a partial solution, see
Tsitsiklis, 2002).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:8.15pt;text-align:justify;text-justify:
inter-ideograph;text-indent:10.0pt;line-height:9.5pt;mso-line-height-rule:exactly;
background:black&#39;&gt;&lt;span class=af7&gt;&lt;span lang=EN-US&gt;Monte Carlo ES (Exploring
Starts), for estimating n n*&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:10.0pt;line-height:11.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize, for all &lt;span class=aff7&gt;s&lt;/span&gt; &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;S, &lt;span class=aff7&gt;a&lt;/span&gt; &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;A(s):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:259.0pt;margin-bottom:12.0pt;
margin-left:27.0pt;text-indent:0cm;line-height:11.75pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Q(s, a) &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;arbitrary n(s) &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;arbitrary Returns(s,
a) &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;empty list&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:10.0pt;line-height:11.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat forever:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:91.0pt;margin-bottom:0cm;
margin-left:27.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Choose S&lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;o G &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;S and A&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;o G &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;A(S&lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;o&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) s.t. all pairs have probability &amp;gt; 0 Generate an episode
starting from S&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;o&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, A&lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;o&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, following n For each pair s, a appearing in the episode:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:149.0pt;margin-bottom:0cm;
margin-left:44.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=aff7&gt;&lt;span
lang=EN-US&gt;G&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;return
following the first occurrence of s, a Append G to Returns(s, a)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-indent:0cm;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Q(s, a) &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;average(Returns(s, a))&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-top:0cm;margin-right:259.0pt;
margin-bottom:0cm;margin-left:27.0pt;margin-bottom:.0001pt;text-align:right;
text-indent:0cm;line-height:11.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;For each s in the episode: n(s) &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;arg max &lt;sub&gt;a&lt;/sub&gt; Q(s, a)&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:282.0pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=376 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left style=&#39;padding-top:0cm;padding-right:0cm;
  padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=afffff9 align=left style=&#39;text-align:left;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:282.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US&gt;V*&lt;/span&gt;&lt;/p&gt;
  &lt;div align=center&gt;
  &lt;table class=MsoNormalTable border=0 cellspacing=0 cellpadding=0
   style=&#39;border-collapse:collapse;mso-table-layout-alt:fixed;mso-table-overlap:
   never;mso-padding-alt:0cm .5pt 0cm .5pt&#39;&gt;
   &lt;tr style=&#39;mso-yfti-irow:0;mso-yfti-firstrow:yes;height:13.9pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;td width=60 valign=top style=&#39;width:44.65pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:13.9pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:282.0pt;
    mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
    mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
    .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=99 valign=top style=&#39;width:73.9pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:13.9pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=afffff6 align=right style=&#39;text-align:right;text-indent:0cm;
    line-height:9.0pt;mso-line-height-rule:exactly;background:transparent;
    mso-element:frame;mso-element-frame-width:282.0pt;mso-element-wrap:no-wrap-beside;
    mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
    mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
    class=ArialUnicodeMS7&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;STICK :&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=33 valign=top style=&#39;width:24.95pt;border:none;border-left:solid windowtext 1.0pt;
    mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:13.9pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-indent:0cm;line-height:5.0pt;
    mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:282.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMS8&gt;&lt;span
    lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;21&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-indent:0cm;line-height:5.0pt;
    mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:282.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMS8&gt;&lt;span
    lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;20&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=96 valign=top style=&#39;width:72.0pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:13.9pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:282.0pt;
    mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
    mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
    .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=89 valign=top style=&#39;width:66.5pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:13.9pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:282.0pt;
    mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
    mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
    .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
   &lt;/tr&gt;
   &lt;tr style=&#39;mso-yfti-irow:1;height:12.95pt;mso-height-rule:exactly&#39;&gt;
    &lt;td width=60 rowspan=2 valign=top style=&#39;width:44.65pt;background:white;
    padding:0cm .5pt 0cm .5pt;height:12.95pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.0pt;
    margin-left:4.0pt;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
    exactly;background:transparent;mso-element:frame;mso-element-frame-width:
    282.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
    mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
    .05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMS7&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;Usable&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-top:3.0pt;margin-right:0cm;margin-bottom:
    0cm;margin-left:10.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:
    9.0pt;mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:282.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMS7&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;ace&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=99 valign=top style=&#39;width:73.9pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:12.95pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=afffff6 align=right style=&#39;text-align:right;text-indent:0cm;
    line-height:9.0pt;mso-line-height-rule:exactly;background:transparent;
    mso-element:frame;mso-element-frame-width:282.0pt;mso-element-wrap:no-wrap-beside;
    mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
    mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
    class=ArialUnicodeMS7&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;n r&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=33 valign=top style=&#39;width:24.95pt;border:none;border-left:solid windowtext 1.0pt;
    mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:12.95pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-indent:0cm;line-height:5.0pt;
    mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:282.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMS8&gt;&lt;span
    lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;19&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-indent:0cm;line-height:5.0pt;
    mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:282.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMS8&gt;&lt;span
    lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;18&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=96 valign=top style=&#39;width:72.0pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:12.95pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:282.0pt;
    mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
    mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
    .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=89 rowspan=2 valign=top style=&#39;width:66.5pt;background:white;
    padding:0cm .5pt 0cm .5pt;height:12.95pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:282.0pt;
    mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
    mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
    .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
   &lt;/tr&gt;
   &lt;tr style=&#39;mso-yfti-irow:2;height:27.35pt;mso-height-rule:exactly&#39;&gt;
    &lt;td width=99 valign=top style=&#39;width:73.9pt;border:none;border-top:solid windowtext 1.0pt;
    mso-border-top-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:27.35pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
    line-height:9.0pt;mso-line-height-rule:exactly;background:transparent;
    mso-element:frame;mso-element-frame-width:282.0pt;mso-element-wrap:no-wrap-beside;
    mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
    mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
    class=ArialUnicodeMS7&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;HIT&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=33 valign=top style=&#39;width:24.95pt;border:none;border-left:solid windowtext 1.0pt;
    mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:27.35pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-indent:0cm;line-height:6.0pt;
    mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:282.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMS8&gt;&lt;span
    lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;17&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-indent:0cm;line-height:6.0pt;
    mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:282.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMS8&gt;&lt;span
    lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;16&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-indent:0cm;line-height:6.0pt;
    mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:282.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMS8&gt;&lt;span
    lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;15&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-indent:0cm;line-height:6.0pt;
    mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:282.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMS8&gt;&lt;span
    lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;14&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-indent:0cm;line-height:5.0pt;
    mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:282.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMS8&gt;&lt;span
    lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;1 3&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=96 valign=top style=&#39;width:72.0pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:27.35pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:282.0pt;
    mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
    mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
    .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
   &lt;/tr&gt;
   &lt;tr style=&#39;mso-yfti-irow:3;mso-yfti-lastrow:yes;height:15.1pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;td width=158 colspan=2 valign=top style=&#39;width:118.55pt;border:none;
    border-bottom:solid windowtext 1.0pt;mso-border-bottom-alt:solid windowtext .5pt;
    background:white;padding:0cm .5pt 0cm .5pt;height:15.1pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:282.0pt;
    mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
    mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
    .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=218 colspan=3 valign=top style=&#39;width:163.45pt;border:none;
    border-left:solid windowtext 1.0pt;mso-border-left-alt:solid windowtext .5pt;
    background:white;padding:0cm .5pt 0cm .5pt;height:15.1pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-indent:0cm;line-height:6.7pt;
    mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:282.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=Candara0&gt;&lt;span
    lang=EN-US style=&#39;font-size:7.0pt&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span
    class=ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt; 7^4/ 11 &lt;/span&gt;&lt;/span&gt;&lt;span
    class=Arial&gt;&lt;span lang=EN-US style=&#39;font-size:4.0pt&#39;&gt;\l&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;/div&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:282.0pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=376 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left style=&#39;padding-top:0cm;padding-right:0cm;
  padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=2fc style=&#39;line-height:5.0pt;mso-line-height-rule:exactly;
  background:transparent;mso-element:frame;mso-element-frame-width:282.0pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=22pt&gt;&lt;span lang=EN-US&gt;A23456789 10&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:9.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:89.3pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=119 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=119 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:89.3pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_16&#34; o:spid=&#34;_x0000_i1107&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image37&#34;
   style=&#39;width:281.25pt;height:89.25pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image040.jpg&#34;
    o:title=&#34;image37&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=afffff8 style=&#39;background:transparent;mso-element:frame;mso-element-frame-height:
  89.3pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span lang=EN-US&gt;Figure 5.3: The optimal policy and state-value
  function for blackjack, found by Monte Carlo ES (Figure 5.4). The state-value
  function shown was computed from the action-value function found by Monte
  Carlo ES.&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:18.15pt;margin-right:1.0pt;margin-bottom:
21.35pt;margin-left:0cm;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 399.6pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 5.3: Solving
Blackjack It is straightforward to apply Monte Carlo ES to blackjack. Since the
episodes are all simulated games, it is easy to arrange for exploring starts
that include all possibilities. In this case one simply picks the dealer\A1\AFs
cards, the player\A1\AFs sum, and whether or not the player has a usable ace, all at
random with equal probability. As the initial policy we use the policy
evaluated in the previous blackjack example, that which sticks only on 20 or
21. The initial action-value function can be zero for all state-action pairs.
Figure 5.3 shows the optimal policy for blackjack found by Monte Carlo ES. This
policy is the same as the \A1\B0basic\A1\B1 strategy of Thorp (1966) with the sole
exception of the leftmost notch in the policy for a usable ace, which is not
present in Thorp\A1\AFs strategy. We are uncertain of the reason for this
discrepancy, but confident that what is shown here is indeed the optimal policy
for the version of blackjack we have described.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l35 level1 lfo21;
tab-stops:36.7pt;background:transparent&#39;&gt;&lt;a name=bookmark69&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;5.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Monte Carlo Control without
Exploring Starts&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;How can we avoid the unlikely
assumption of exploring starts&lt;/span&gt;&lt;span class=MingLiUf7&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;\A3\BF&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; The only general way
to ensure that all actions are selected infinitely often is for the agent to
continue to select them. There are two approaches to ensuring this, resulting
in what we call &lt;span class=aff7&gt;on-policy&lt;/span&gt; methods and &lt;span class=aff7&gt;off-policy&lt;/span&gt;
methods. On-policy methods attempt to evaluate or improve the policy that is
used to make decisions, whereas off-policy methods evaluate or improve a policy
different from that used to generate the data. The Monte Carlo ES method
developed above is an example of an on-policy method. In this section we show
how an on-policy Monte Carlo control method can be designed that does not use
the unrealistic assumption of exploring starts. Off-policy methods&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection107&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.75pt;
margin-left:51.0pt;text-indent:-50.0pt;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;are considered in the next
section.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:10.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In on-policy control methods the policy is
generally &lt;span class=aff7&gt;soft,&lt;/span&gt; meaning that &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;|&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;&amp;gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;0 for all &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;G &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;S &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;and all &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;a &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;G &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;), but gradually shifted closer and closer to a deterministic
optimal policy. Many of the methods discussed in Chapter 2 provide mechanisms
for this. The on-policy method we present in this section uses &lt;span
class=aff7&gt;&amp;pound;-greedy&lt;/span&gt; policies, meaning that most of the time they choose
an action that has maximal estimated action value, but with probability &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&amp;pound; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;they instead select an action at random. That is, all nongreedy
actions are given the minimal probability of selection, &lt;/span&gt;&lt;span class=afc&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;|^)|&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;,
and the remaining bulk of the probability, &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; \A1\AA &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&amp;pound; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+ pfsji, is given to the greedy action. The &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&amp;pound;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;-greedy policies are examples of &lt;span class=aff7&gt;&amp;pound;-soft&lt;/span&gt;
policies, defined as policies for which &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;|&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) &amp;gt; &lt;span class=afc&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbooka&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span
class=afc&gt;&lt;span lang=EN-US&gt;(s)|&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; for all states
and actions, for some &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;&amp;pound; &amp;gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;0. Among &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&amp;pound;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;-soft policies, &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&amp;pound;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-greedy
policies are in some sense those that are closest to greedy.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:10.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The overall idea of on-policy Monte Carlo control
is still that of GPI. As in Monte Carlo ES, we use first-visit MC methods to
estimate the action-value function for the current policy. Without the
assumption of exploring starts, however, we cannot sim&amp;shy;ply improve the policy
by making it greedy with respect to the current value function, because that
would prevent further exploration of nongreedy actions. Fortunately, GPI does
not require that the policy be taken all the way to a greedy policy, only that
it be moved &lt;span class=aff7&gt;toward&lt;/span&gt; a greedy policy. In our on-policy
method we will move it only to an &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&amp;pound;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-greedy
policy. For any &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;&amp;pound;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-soft policy, &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, any &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;&amp;pound;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-greedy policy with
respect to &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;n is guaranteed to be
better than or equal to &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. The complete algorithm
is given in the box below.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:39.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
10.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;That any &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;&amp;pound;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-greedy policy with
respect to &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;^ is an improvement
over any &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;&amp;pound;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-soft policy &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;is assured by the policy improvement theorem. Let &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&#39; be the &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;&amp;pound;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-greedy policy. The
conditions of the policy improvement theorem apply because for any&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.15pt;
margin-left:24.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:black&#39;&gt;&lt;span class=af7&gt;&lt;span lang=EN-US&gt;i-policy first-visit MC
control (for &amp;pound;-soft policies), estimates n n*&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:10.0pt;line-height:11.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize, for all s &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;S, a &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;A(s):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:14.0pt;margin-bottom:9.0pt;
margin-left:24.0pt;text-indent:0cm;line-height:11.75pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Q(s, a) &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;arbitrary Returns(s, a) &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;empty list
n(a&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;s) &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;an arbitrary &amp;pound;-soft
policy&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:10.0pt;line-height:11.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat forever:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:24.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.75pt;mso-line-height-rule:exactly;
mso-list:l43 level1 lfo22;tab-stops:39.35pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;(a)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Generate an episode using n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:24.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.75pt;mso-line-height-rule:exactly;
mso-list:l43 level1 lfo22;tab-stops:39.35pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;(b)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;For each pair s, a appearing in
the episode:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;G &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;return
following the first occurrence of &lt;span class=aff7&gt;. &lt;/span&gt;Append G to
Returns(s, a)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:51.0pt;text-indent:0cm;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Q(s, a) &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;average(Returns(s, a))&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:24.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.75pt;mso-line-height-rule:exactly;
mso-list:l43 level1 lfo22;tab-stops:39.35pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;(c)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;For each s in the episode:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:51.0pt;text-indent:0cm;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;A* &lt;/span&gt;&lt;span
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lang=EN-US&gt;argmax&lt;sub&gt;a&lt;/sub&gt; Q(s, a)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:51.0pt;text-indent:0cm;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For all a
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lang=EN-US&gt;A(s):&lt;/span&gt;&lt;/p&gt;

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 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
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    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:5.0pt;margin-bottom:
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&lt;/v:shape&gt;&lt;a name=bookmark70&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; \A1\AA &amp;pound; + &amp;pound;/|A(s) |&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
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&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection108&gt;

&lt;p class=2f9 align=left style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;
text-align:left;line-height:12.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2a&gt;&lt;span lang=EN-US&gt;qn (s,n&lt;sup&gt;;&lt;/sup&gt;(s)) = f n&lt;sup&gt;;&lt;/sup&gt;(a|s)qn
(s,a)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection109&gt;

&lt;p class=MsoNormal style=&#39;line-height:10.1pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection110&gt;

&lt;div style=&#39;mso-element:dropcap-dropped;mso-element-frame-hspace:2.9pt;
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paragraph;mso-element-anchor-horizontal:column;mso-height-rule:exactly;
mso-element-linespan:2&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0&gt;
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&lt;/v:shape&gt;&lt;span class=2a&gt;&lt;span lang=EN-US&gt;^qn (s,a) + L n(a|s)qn (s,a)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
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&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection115&gt;

&lt;p class=MsoNormal style=&#39;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
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&lt;div class=WordSection116&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
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class=2a&gt;&lt;span lang=EN-US&gt;Thus, by the policy improvement theorem, &amp;gt; n &lt;/span&gt;&lt;/span&gt;&lt;span
class=22pt0&gt;&lt;span lang=EN-US&gt;(i.e.,(s)&lt;/span&gt;&lt;/span&gt;&lt;span class=2a&gt;&lt;span
lang=EN-US&gt; &amp;gt; v^(s), for all s G S). We now prove that equality can hold
only when both and n are optimal among the e-soft policies, that is, when they
are better than or equal to all other e-soft policies.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2a&gt;&lt;span
lang=EN-US&gt;Consider a new environment that is just like the original
environment, except with the requirement that policies be e-soft \A1\B0moved inside\A1\B1
the environment. The new environment has the same action and state set as the
original and behaves as follows. If in state s and taking action a, then with
probability 1 - e the new environment behaves exactly like the old environment.
With probability e it repicks the action at random, with equal probabilities,
and then behaves like the old environment with the new, random action. The best
one can do in this new environment with general policies is the same as the
best one could do in the original environment with e-soft policies. Let &lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU4&gt;&lt;span style=&#39;font-size:9.5pt;mso-ansi-language:ZH-TW&#39;&gt;ʯ&lt;/span&gt;&lt;/span&gt;&lt;span
class=2a&gt;&lt;span lang=EN-US&gt;* and &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;c[*&lt;/span&gt;&lt;/span&gt;&lt;span class=2a&gt;&lt;span
lang=EN-US&gt; denote the optimal value functions for the new environment. Then a
policy n is optimal among e-soft policies if and only if v^ = ^*. From the
definition of &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS0&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;Tj*&lt;/span&gt;&lt;/span&gt;&lt;span class=2a&gt;&lt;span lang=EN-US&gt; we
know that it is the unique solution to&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection119&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;However, this equation is the same as
the previous one, except for the substitution of &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;n for &lt;span class=aff7&gt;vJ*.&lt;/span&gt; Since &lt;span class=aff7&gt;vJ*&lt;/span&gt;
is the unique solution, it must be that &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;^ = ^*.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In essence, we have shown in the last few pages that policy
iteration works for &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-soft policies. Using
the natural notion of greedy policy for &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-soft
policies, one is assured of improvement on every step, except when the best
policy has been found among the &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-soft
policies. This analysis is independent of how the action-value functions are
determined at each stage, but it does assume that they are computed exactly.
This brings us to roughly the same point as in the previous section. Now we
only achieve the best policy among the &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-soft
policies, but on the other hand, we have eliminated the assumption of exploring
starts.&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l35 level1 lfo21;
tab-stops:36.95pt;background:transparent&#39;&gt;&lt;a name=bookmark71&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;5.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Off-policy Prediction via
Importance Sampling&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;All learning control methods face a
dilemma: They seek to learn action values con&amp;shy;ditional on subsequent &lt;span
class=aff7&gt;optimal&lt;/span&gt; behavior, but they need to behave non-optimally in
order to explore all actions (to &lt;span class=aff7&gt;find&lt;/span&gt; the optimal
actions). How can they learn about the optimal policy while behaving according
to an exploratory policy&lt;/span&gt;&lt;span class=MingLiUf7&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;\A3\BF&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; The on-policy approach in the preceding
section is actually a compromise\A1\AAit learns action values not for the optimal
policy, but for a near-optimal policy that still explores. A more
straightforward approach is to use two policies, one that is learned about and
that becomes the optimal policy, and one that is more exploratory and is used
to gen&amp;shy;erate behavior. The policy being learned about is called the &lt;span
class=aff7&gt;target policy&lt;/span&gt;, and the policy used to generate behavior is
called the &lt;span class=aff7&gt;behavior policy&lt;/span&gt;. In this case we say that
learning is from data \A1\B0off\A1\B1 the target policy, and the overall process is
termed &lt;span class=aff7&gt;off-policy learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Throughout the rest of this
book we consider both on-policy and off-policy meth&amp;shy;ods. On-policy methods are
generally simpler and are considered first. Off-policy methods require
additional concepts and notation, and because the data is due to a different
policy, off-policy methods are often of greater variance and are slower to
converge. On the other hand, off-policy methods are more powerful and general.
They include on-policy methods as the special case in which the target and
behavior policies are the same. Off-policy methods also have a variety of
additional uses in applications. For example, they can often be applied to
learn from data generated by a conventional non-learning controller, or from a
human expert. Off-policy learning is also seen by some as key to learning
multi-step predictive models of the world\A1\AFs dynamics (Sutton, 2009, Sutton et
al., 2011).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In this section we begin the
study of off-policy methods by considering the &lt;span class=aff7&gt;predic&amp;shy;tion&lt;/span&gt;
problem, in which both target and behavior policies are fixed. That is, suppose
we wish to estimate v^ or , but all we have are episodes following another
policy b, where &lt;span class=aff7&gt;b&lt;/span&gt; = n. In this case, n is the target
policy, &lt;span class=aff7&gt;b&lt;/span&gt; is the behavior policy, and both policies are
considered fixed and given.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In order to use episodes from
b to estimate values for n, we require that every action taken under n is also
taken, at least occasionally, under b. That is, we require that n(a|s) &amp;gt; 0
implies b(a|s) &amp;gt; 0. This is called the assumption of &lt;span class=aff7&gt;coverage.&lt;/span&gt;
It follows from coverage that &lt;span class=aff7&gt;b&lt;/span&gt; must be stochastic in
states where it is not identical to n. The target policy n, on the other hand,
may be deterministic, and, in fact, this is a case of particular interest in
control problems. In control, the target policy is typically the deterministic
greedy policy with respect to the current action-value function estimate. This
policy becomes a deterministic optimal policy while the behavior policy remains
stochastic and more exploratory, for example, an &amp;pound;-greedy policy. In this
section, however, we consider the prediction problem, in which n is unchanging
and given.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:13.55pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Almost all off-policy methods
utilize &lt;span class=aff7&gt;importance sampling&lt;/span&gt;, a general technique for
estimating expected values under one distribution given samples from another.
We apply importance sampling to off-policy learning by weighting returns
according to the relative probability of their trajectories occurring under the
target and behavior policies, called the &lt;span class=aff7&gt;importance-sampling
ratio.&lt;/span&gt; Given a starting state St, the prob&amp;shy;ability of the subsequent
state-action trajectory, At, St&lt;/span&gt;&lt;span class=MingLiUf7&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, At&lt;/span&gt;&lt;span class=MingLiUf7&gt;&lt;span style=&#39;font-size:11.5pt;
mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=1pt3&gt;&lt;span lang=EN-US&gt;,...,&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span class=CenturySchoolbookb&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, occurring under any
policy n is&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.4pt;
margin-left:28.0pt;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Pr{At, St&lt;/span&gt;&lt;span
class=MingLiUf7&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, At&lt;/span&gt;&lt;span class=MingLiUf7&gt;&lt;span style=&#39;font-size:11.5pt;
mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=1pt3&gt;&lt;span lang=EN-US&gt;,...,&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;St &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;| St, At&lt;/span&gt;&lt;span
class=MingLiUf7&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;-1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span class=MingLiUf5&gt;&lt;span style=&#39;font-size:7.5pt;
mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;n}&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.6pt;
margin-left:49.0pt;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=n(At|St)p(St&lt;/span&gt;&lt;span
class=MingLiUf7&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; |St, At)n(At&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;|St&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) \A1\F6 \A1\F6 \A1\F6 &lt;/span&gt;&lt;span class=CenturySchoolbookb&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=CenturySchoolbookb&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;|&lt;/span&gt;&lt;span class=CenturySchoolbookb&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &lt;/span&gt;&lt;span class=CenturySchoolbookb&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;At&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;-1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:64.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;T -1&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.0pt;
margin-left:49.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=H &lt;sup&gt;n(A&lt;/sup&gt;k&lt;sup&gt;|S&lt;/sup&gt;k)P&lt;sup&gt;(S&lt;/sup&gt;k&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;!&lt;sup&gt;S&lt;/sup&gt;k&lt;sup&gt;, A&lt;/sup&gt;k),&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.75pt;
margin-left:64.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;k=t&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:15.15pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;where p here is the state-transition
probability function defined by (3.10). Thus, the relative probability of the
trajectory under the target and behavior policies (the importance-sampling ratio)
is&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;sub&gt;&lt;span lang=EN-US&gt;p&lt;/span&gt;&lt;/sub&gt;&lt;span
lang=EN-US&gt; = nT=t&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; n(Ak &lt;span
class=aff&gt;|Sk )p(S&lt;sub&gt;w&lt;/sub&gt;|Sk&lt;/span&gt; &lt;span class=1pt3&gt;,Ak)&lt;/span&gt; = T&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;-1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; n(Ak &lt;span class=aff&gt;|Sk&lt;/span&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.5pt;
margin-left:64.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 405.05pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;\A1\AAnT=t&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;
b(Ak|Sk)p(Sk+&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;|Sk,Ak) \A1\AA &lt;sub&gt;k&lt;/sub&gt;&lt;sup&gt;n&lt;/sup&gt;&lt;sub&gt;t&lt;/sub&gt; &lt;sup&gt;b(A&lt;/sup&gt;k&lt;sup&gt;|S&lt;/sup&gt;k&lt;sup&gt;)&lt;/sup&gt;&#39;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &#39; &lt;sup&gt;j&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Although the trajectory probabilities depend on
the MDP\A1\AFs transition probabilities, which are generally unknown, they appear
identically in both the numerator and denominator, and thus cancel. The
importance sampling ratio ends up depending only on the two policies and the
sequence, not on the MDP.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:18.15pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Now we are ready to give a
Monte Carlo algorithm that uses a batch of observed episodes following policy b
to estimate Vn(s). It is convenient here to number time steps in a way that
increases across episode boundaries. That is, if the first episode of the batch
ends in a terminal state at time &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;100&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, then the next
episode begins at time t = 101. This enables us to use time-step numbers to
refer to particular steps in particular episodes. In particular, we can define
the set of all time steps in which state s is visited, denoted T(s). This is
for an every-visit method; for a first-visit method, T(s) would only include
time steps that were first visits to s within their episodes. Also, let T(t)
denote the first time of termination following time t, and Gt denote the return
after t up through T(t). Then {Gt}te&lt;/span&gt;&lt;span class=MingLiUf7&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;\B6\A1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(s) are the returns that pertain to state s, and {pt:T(t&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;)_1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;}te&lt;/span&gt;&lt;span class=MingLiUf7&gt;&lt;span style=&#39;font-size:11.5pt;
mso-ansi-language:ZH-TW&#39;&gt;\B6\A1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(s) are the
corresponding importance-sampling ratios. To estimate v^ (s), we simply scale
the returns by the ratios and average the results:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.75pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 159.75pt 401.7pt;
background:transparent&#39;&gt;&lt;span class=aff6&gt;&lt;span lang=EN-US&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; (s) = &lt;sup&gt;E&lt;/sup&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=afc&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A2\C8&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;-lGt&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(5.4)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;When importance sampling is done as a
simple average in this way it is called &lt;span class=aff7&gt;ordinary importance
sampling&lt;/span&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:17.3pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;An important alternative is &lt;span class=aff7&gt;weighted importance
sampling&lt;/span&gt;, which uses a &lt;span class=aff7&gt;weighted &lt;/span&gt;average, defined
as&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:10.8pt;mso-line-height-rule:exactly;
tab-stops:right 401.7pt;background:transparent&#39;&gt;&lt;span class=1pt3&gt;&lt;span
lang=EN-US&gt;V(s)=&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUf8&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;\C1&lt;span lang=ZH-TW&gt;\A2\C8&lt;/span&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span class=afc&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A2\C8&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;-lGt&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(5.5)&lt;/span&gt;&lt;/p&gt;

&lt;p class=153 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.9pt;
margin-left:127.0pt;line-height:10.8pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=1595pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(t&lt;/span&gt;&lt;/span&gt;&lt;span
class=150&gt;&lt;span lang=EN-US&gt;)-1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;or zero if the denominator is zero. To
understand these two varieties of importance sampling, consider their estimates
after observing a single return. In the weighted- average estimate, the ratio
pt&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:
EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;sub&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;/sub&gt;&lt;span lang=EN-US&gt;(t)_i
for the single return cancels in the numerator and denominator, so that the
estimate is equal to the observed return independent of the ratio (assuming the
ratio is nonzero). Given that this return was the only one observed, this is a
reasonable estimate, but its expectation is v^(s) rather than v&lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;آ&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(s),
and in this statistical sense it is biased. In contrast, the simple average
(5.4) is always v^(s) in expectation (it is unbiased), but it can be extreme.
Suppose the ratio were ten, indicating that the trajectory observed is ten
times as likely under the target policy as under the behavior policy. In this
case the ordinary importance- sampling estimate would be &lt;span class=aff7&gt;ten
times&lt;/span&gt; the observed return. That is, it would be quite far from the
observed return even though the episode\A1\AFs trajectory is considered very
representative of the target policy.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Formally, the difference
between the two kinds of importance sampling is expressed in their biases and
variances. The ordinary importance-sampling estimator is unbi&amp;shy;ased whereas the
weighted importance-sampling estimator is biased (the bias con&amp;shy;verges
asymptotically to zero). On the other hand, the variance of the ordinary
importance-sampling estimator is in general unbounded because the variance of
the ratios can be unbounded, whereas in the weighted estimator the largest
weight on any single return is one. In fact, assuming bounded returns, the
variance of the weighted importance-sampling estimator converges to zero even
if the variance of the ratios themselves is infinite (Precup, Sutton, and
Dasgupta 2001). In practice, the weighted estimator usually has dramatically
lower variance and is strongly pre&amp;shy;ferred. Nevertheless, we will not totally
abandon ordinary importance sampling as it is easier to extend to the
approximate methods using function approximation that we explore in the second
part of this book.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.7pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;A complete every-visit MC
algorithm for off-policy policy evaluation using weighted importance sampling
is given in the next section on page &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;120&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 5.4: Off-policy Estimation of a Blackjack
State Value&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;We applied both ordinary and weighted
importance-sampling methods to estimate the value of a single blackjack state
from off-policy data. Recall that one of the&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;advantages of Monte Carlo methods is
that they can be used to evaluate a single state without forming estimates for
any other states. In this example, we evaluated the state in which the dealer
is showing a deuce, the sum of the player\A1\AFs cards is 13, and the player has a
usable ace (that is, the player holds an ace and a deuce, or equivalently three
aces). The data was generated by starting in this state then choosing to hit or
stick at random with equal probability (the behavior policy). The target policy
was to stick only on a sum of 20 or 21, as in Example 5.1. The value of this
state under the target policy is approximately \A1\AA0.27726 (this was determined by
separately generating one-hundred million episodes using the target policy and
averaging their returns). Both off-policy methods closely approximated this
value after 1000 off-policy episodes using the random policy. To make sure they
did this reliably, we performed &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang7&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;100&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt; independent runs, each starting from estimates of zero and learning
for 10,000 episodes. Figure 5.4 shows the resultant learning curves\A1\AAthe squared
error of the estimates of each method as a function of number of episodes,
averaged over the 100 runs. The error approaches zero for both algorithms, but
the weighted importance-sampling method has much lower error at the beginning,
as is typical in practice.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 5.5: Infinite Variance&lt;/span&gt;&lt;/p&gt;

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    class=43Exact&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:0pt&#39;&gt;Monte-Carlo
    estimate of &lt;/span&gt;&lt;/span&gt;&lt;span class=437pt&gt;&lt;span lang=EN-US
    style=&#39;font-size:7.0pt;letter-spacing:0pt;font-weight:normal&#39;&gt;v&lt;sub&gt;n&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
    class=43Exact&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:0pt&#39;&gt;
    (&lt;/span&gt;&lt;/span&gt;&lt;span class=437pt&gt;&lt;span lang=EN-US style=&#39;font-size:7.0pt;
    letter-spacing:0pt;font-weight:normal&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=43Exact&gt;&lt;span
    lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:0pt&#39;&gt;) with ordinary
    importance &lt;/span&gt;&lt;/span&gt;&lt;span class=43Candara&gt;&lt;span lang=EN-US
    style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;1 &lt;/span&gt;&lt;/span&gt;&lt;span
    class=43Exact&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:0pt&#39;&gt;sampling
    (ten runs)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=450 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;line-height:
    4.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    lang=EN-US style=&#39;letter-spacing:0pt&#39;&gt;0&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;The estimates of ordinary importance
sampling will typically have infinite variance, and thus unsatisfactory
convergence properties, whenever the scaled returns have infinite variance\A1\AAand
this can easily happen in off-policy learning when trajecto&amp;shy;ries contain loops.
A simple example is shown inset in Figure 5.5. There is only one nonterminal
state s and two actions, &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;right &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;left&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;.
The &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;right &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;action
causes a deterministic transition to termination, whereas the &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;left &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;action transitions, with probability 0.9, back to s
or, with probability 0.1, on to termination. The rewards are +1 on the latter
transition and otherwise zero. Consider the target policy that always selects &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;left&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;. All episodes under this policy consist of some
number (possibly &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection120&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=ac&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;zero) of transitions back to &lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span class=ac&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;followed by termination with a reward and
return of +&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=ac&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;.
Thus the value of &lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span class=ac&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;under the target policy is 1 (&lt;/span&gt;&lt;/span&gt;&lt;span class=75pt&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=ac&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;= 1). Suppose we are estimating this value
from off-policy data using the behavior policy that selects &lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;right &lt;/span&gt;&lt;/span&gt;&lt;span
class=ac&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;left &lt;/span&gt;&lt;/span&gt;&lt;span
class=ac&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;with equal probability.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The lower part of Figure 5.5
shows ten independent runs of the first-visit MC algo&amp;shy;rithm using ordinary
importance sampling. Even after millions of episodes, the esti&amp;shy;mates fail to
converge to the correct value of 1. In contrast, the weighted importance-
sampling algorithm would give an estimate of exactly &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; everafter
the first episode that ended with the &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span
lang=EN-US&gt;back &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;action. All returns not equal to
1 (that is, ending with the &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span
lang=EN-US&gt;end &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;action) would be inconsistent
with the target policy and thus would have a &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;P&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt;
mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;T(t)&lt;sub&gt;-&lt;/sub&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; of zero and contribute neither to the numerator nor denominator of
(5.5). The weighted importance-sampling algorithm produces a weighted average
of only the returns consistent with the target policy, and all of these would
be exactly &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:19.55pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;We can verify that the variance of the importance-sampling-scaled
returns is infi&amp;shy;nite in this example by a simple calculation. The variance of
any random variable &lt;span class=aff7&gt;X&lt;/span&gt; is the expected value of the
deviation from its mean &lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;\D3\C8&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A3\AC&lt;/span&gt;&lt;span
lang=EN-US&gt;which can be written&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:18.45pt;
margin-left:28.0pt;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Var[&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;X &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;] = E [(&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;X \A1\AA&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;\D3\C8&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;j = E[&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;2&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;X &lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUf6&gt;&lt;span
style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;\D3\C8&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span style=&#39;font-size:8.0pt;mso-ansi-language:ZH-TW&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;+ &lt;/span&gt;&lt;span
class=MingLiUf6&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;\D3\C8&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;] = E[&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;]&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUf6&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;\D3\C8&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Thus, if the mean is finite, as it is in our case, the variance is
infinite if and only if the expectation of the square of the random variable is
infinite. Thus, we need only&lt;br clear=all style=&#39;page-break-before:always&#39;&gt;
show that the expected square of the importance-sampling-scaled return is
infinite:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:137.0pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=9pt4&gt;&lt;span
lang=ZH-TW style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt; _&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:74.0pt;margin-bottom:.0001pt;text-align:left;line-height:11.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;a name=bookmark72&gt;&lt;span
class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;n(A&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark72&#39;&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;|S&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark72&#39;&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark72&#39;&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;g&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark72&#39;&gt;&lt;span class=21MingLiU2&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;\A1\A3&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.55pt;
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&lt;/v:shape&gt;&lt;a name=bookmark73&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;b(At|St)&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;To compute this expectation, we break
it down into cases based on episode length and termination. First note that,
for any episode ending with the &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span
lang=EN-US&gt;end &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;action, the importance sampling
ratio is zero, because the target policy would never take this action; these
episodes thus contribute nothing to the expectation (the quantity in
parenthesis will be zero) and can be ignored. We need only consider episodes
that involve some number (possibly zero) of &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span
lang=EN-US&gt;back &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;actions that transition back to
the nonterminal state, followed by a &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span
lang=EN-US&gt;back &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;action transitioning to
termination. All of these episodes have a return of 1, so the G&lt;/span&gt;\A1\A3&lt;span
lang=EN-US&gt;factor can be ignored. To get the expected square we need only
consider each length of episode, multiplying the probability of the episode\A1\AFs
occurrence by the square of its importance-sampling ratio, and add these up:&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection123&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
9.25pt;margin-left:51.0pt;text-align:left;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=480 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:4.05pt;
margin-left:0cm;line-height:13.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:2.8pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 398.8pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 5.3 What is the equation
analogous to (5.5) for &lt;span class=aff7&gt;action&lt;/span&gt; values Q(s, a) instead of
state values V(s), again given returns generated using b?&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.2pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;tab-stops:right 398.8pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 5.4 In learning curves such
as those shown in Figure 5.4 error generally decreases with training, as indeed
happened for the ordinary importance-sampling method. But for the weighted
importance-sampling method error first increased and then decreased. Why do you
think this happened?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 398.8pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 5.5
The results with Example 5.5 and shown in Figure 5.5 used a first- visit MC
method. Suppose that instead an every-visit MC method was used on the same
problem. Would the variance of the estimator still be infinite? Why or why not?&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;br
clear=all style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l35 level1 lfo21;
tab-stops:36.25pt;background:transparent&#39;&gt;&lt;a name=bookmark74&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;5.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Incremental Implementation&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Monte Carlo prediction methods can be
implemented incrementally, on an episode- by-episode basis, using extensions of
the techniques described in Chapter &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; (Sec&amp;shy;tion 2.4).
Whereas in Chapter 2 we averaged &lt;span class=aff7&gt;rewards,&lt;/span&gt; in Monte
Carlo methods we average &lt;span class=aff7&gt;returns.&lt;/span&gt; In all other respects
exactly the same methods as used in Chapter 2 can be used for &lt;span class=aff7&gt;on-policy&lt;/span&gt;
Monte Carlo methods. For &lt;span class=aff7&gt;off-policy&lt;/span&gt; Monte Carlo meth&amp;shy;ods,
we need to separately consider those that use &lt;span class=aff7&gt;ordinary&lt;/span&gt;
importance sampling and those that use &lt;span class=aff7&gt;weighted&lt;/span&gt;
importance sampling.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In ordinary importance
sampling, the returns are scaled by the importance sam&amp;shy;pling ratio pt:T(t)_i
(5.3), then simply averaged. For these methods we can again use the incremental
methods of Chapter 2, but using the scaled returns in place of the rewards of
that chapter. This leaves the case of off-policy methods using &lt;span
class=aff7&gt;weighted &lt;/span&gt;importance sampling. Here we have to form a weighted
average of the returns, and a slightly different incremental algorithm is
required.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Suppose we have a sequence of returns Gi, G&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=1pt3&gt;&lt;span
lang=EN-US&gt;,...,&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; G&lt;sub&gt;n-&lt;/sub&gt;i, all starting
in the same state and each with a corresponding random weight Wi (e.g., Wi =
Pt:r(t)_i). We wish to form the estimate&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:288.0pt;margin-bottom:4.25pt;
margin-left:63.0pt;text-indent:23.0pt;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a name=bookmark75&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;sub&gt;&lt;span
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8.0pt&#39;&gt;G&lt;/span&gt;&lt;/span&gt;&lt;sub&gt;&lt;span lang=EN-US&gt;fc&lt;/span&gt;&lt;/sub&gt;&lt;span lang=EN-US&gt; zn&lt;/span&gt;&lt;/span&gt;&lt;span
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lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span
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lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;sub&gt;&lt;span lang=EN-US&gt;fc&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;and keep it up-to-date as we obtain a
single additional return Gn. In addition to keeping track of Vn, we must
maintain for each state the cumulative sum Cn of the weights given to the first
n returns. The update rule for Vn is&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection124&gt;

&lt;p class=MsoNormal style=&#39;margin-top:3.4pt;margin-right:0cm;margin-bottom:3.4pt;
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lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
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&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection125&gt;

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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;n &amp;gt; 1,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(5.7)&lt;/span&gt;&lt;/p&gt;

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&lt;div class=WordSection126&gt;

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&lt;/div&gt;

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&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
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&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection127&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:11.15pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;and&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.75pt;
margin-left:28.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;C&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; = C&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+ W&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:2.65pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;where Co == 0 (and Vi is arbitrary and
thus need not be specified). The box on the next page contains a complete
episode-by-episode incremental algorithm for Monte Carlo policy evaluation. The
algorithm is nominally for the off-policy case, using weighted importance
sampling, but applies as well to the on-policy case just by choosing the target
and behavior policies as the same (in which case (n = b), W is always 1). The
approximation &lt;span class=aff7&gt;Q&lt;/span&gt; converges to q&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(for all encountered state-action pairs) while actions are selected
according to a potentially different policy, b.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.9pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 5.6 Modify the algorithm for first-visit
MC policy evaluation (Section 5.1) to use the incremental implementation for
sample averages described in Section 2.4.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:3.4pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.9pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 398.65pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 5.7 Derive the
weighted-average update rule (5.7) from (5.6). Follow the pattern of the
derivation of the unweighted rule (2.3).&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;br
clear=all style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.45pt;
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0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span
class=af7&gt;&lt;span lang=EN-US&gt;Off-policy MC prediction, for estimating &lt;/span&gt;&lt;/span&gt;&lt;span
class=affb&gt;&lt;span lang=EN-US&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span class=af7&gt;&lt;span lang=EN-US&gt; ^
q^&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.15pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Input: an arbitrary target policy n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:11.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize, for all &lt;span class=aff7&gt;s&lt;/span&gt; &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;S, &lt;span class=aff7&gt;a&lt;/span&gt; &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;A(s):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:225.0pt;margin-bottom:8.8pt;
margin-left:27.0pt;text-indent:0cm;line-height:11.75pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Q(s, a) &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;arbitrary &lt;span class=aff7&gt;C&lt;/span&gt;(s, a) &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat forever:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:225.0pt;margin-bottom:0cm;
margin-left:27.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:12.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=aff7&gt;&lt;span
lang=EN-US&gt;b&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;any policy
with coverage of n Generate an episode using b:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.05pt;mso-line-height-rule:exactly;
tab-stops:right 181.75pt;background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;o&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &lt;sup&gt;A&lt;/sup&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;o&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, &lt;sup&gt;R&lt;/sup&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &amp;#8226; &amp;#8226; &amp;#8226; , &lt;span class=aff7&gt;&lt;sup&gt;S&lt;/sup&gt;T&lt;/span&gt; &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;\A1\AA 1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &lt;sup&gt;A&lt;/sup&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;T \A1\AA 1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;, &lt;span class=aff7&gt;&lt;sup&gt;S&lt;/sup&gt;T&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:225.0pt;margin-bottom:0cm;
margin-left:27.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:11.05pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;G &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;0 W &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:27.0pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For t = &lt;span
class=aff7&gt;T&lt;/span&gt; &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;1, T &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
class=1pt3&gt;&lt;span lang=EN-US&gt;2,...&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; downto 0:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:243.0pt;margin-bottom:0cm;
margin-left:44.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;G &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;G &lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;t+i &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;C(S&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;,A&lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;C(S&lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, A&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) + W&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=aff7&gt;&lt;span lang=EN-US&gt;Q&lt;sup&gt;(S&lt;/sup&gt;U&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;sup&gt;A&lt;/sup&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;Q&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;(&lt;sup&gt;S&lt;/sup&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &lt;sup&gt;A&lt;/sup&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span lang=EN-US
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;c(St,A&lt;sub&gt;t&lt;/sub&gt;) &lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;[G &lt;/span&gt;&lt;/sup&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;Q&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;(&lt;sup&gt;S&lt;/sup&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;7 &lt;sup&gt;A&lt;/sup&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)]&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 style=&#39;margin-left:44.0pt;line-height:11.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=49Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;W &lt;/span&gt;&lt;/span&gt;&lt;span class=49MingLiU&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;\B2\B7&lt;/span&gt;&lt;/span&gt;&lt;span
class=49Batang&gt;&lt;span style=&#39;font-size:9.5pt;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=49Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;W &lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;n&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;(&lt;sup&gt;At&lt;/sup&gt;)&lt;sup&gt;St&lt;/sup&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 style=&#39;margin-left:44.0pt;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=49Batang&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;W&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=49Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;^ &lt;/span&gt;&lt;span
class=49Batang&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;W&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=49Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;b(A&lt;sub&gt;t&lt;/sub&gt;|S&lt;sub&gt;t&lt;/sub&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:36.8pt;
margin-left:44.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;If W = 0 then ExitForLoop&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.35pt;
margin-left:3.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l35 level1 lfo21;
tab-stops:39.95pt;background:transparent&#39;&gt;&lt;a name=bookmark76&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;5.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Off-policy Monte Carlo Control&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:3.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;We are now ready to present an example of the
second class of learning control methods we consider in this book: off-policy
methods. Recall that the distinguishing feature of on-policy methods is that
they estimate the value of a policy while using it for control. In off-policy
methods these two functions are separated. The policy used to generate
behavior, called the &lt;span class=aff7&gt;behavior&lt;/span&gt; policy, may in fact be
unrelated to the policy that is evaluated and improved, called the &lt;span
class=aff7&gt;target&lt;/span&gt; policy. An advantage of this separation is that the
target policy may be deterministic (e.g., greedy), while the behavior policy
can continue to sample all possible actions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:3.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Off-policy Monte Carlo control methods use one of
the techniques presented in the preceding two sections. They follow the
behavior policy while learning about and improving the target policy. These
techniques require that the behavior policy has a nonzero probability of
selecting all actions that might be selected by the target policy (coverage).
To explore all possibilities, we require that the behavior policy be soft
(i.e., that it select all actions in all states with nonzero probability).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:3.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The box on the next page shows an off-policy
Monte Carlo method, based on GPI and weighted importance sampling, for
estimating n* and q*. The target policy n &lt;/span&gt;&lt;span class=MingLiUfb&gt;&lt;span
style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\B0\D1&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;n* is the greedy
policy with respect to Q, which is an estimate of q^. The behavior policy b can
be anything, but in order to assure convergence of n to the optimal policy, an
infinite number of returns must be obtained for each pair of state and action.
This can be assured by choosing b to be e-soft. The policy n converges to
optimal at all encountered states even though actions are selected according to
a different soft policy b, which may change between or even within episodes.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection128&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:5.15pt;text-align:justify;text-justify:
inter-ideograph;text-indent:10.0pt;line-height:9.5pt;mso-line-height-rule:exactly;
background:black&#39;&gt;&lt;span class=af7&gt;&lt;span lang=EN-US&gt;Off-policy MC control, for
estimating n &lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUfc&gt;&lt;span style=&#39;font-size:8.5pt;
mso-ansi-language:ZH-TW&#39;&gt;\B0\D1&lt;/span&gt;&lt;/span&gt;&lt;span class=af7&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;n*&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:10.0pt;line-height:11.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize, for all &lt;span class=aff7&gt;s&lt;/span&gt; &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;S, &lt;span class=aff7&gt;a&lt;/span&gt; &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;A(s):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:289.0pt;margin-bottom:0cm;
margin-left:27.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Q(s, a) &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;arbitrary &lt;span class=aff7&gt;C&lt;/span&gt;(s, a) &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.8pt;
margin-left:27.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.75pt;mso-line-height-rule:exactly;tab-stops:right 283.1pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;n(s) &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;argmax&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;sub&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;a&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Q(S&lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, a)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(with
ties broken consistently)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:10.0pt;line-height:12.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat forever:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:250.0pt;margin-bottom:0cm;
margin-left:27.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:12.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;b &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;any soft policy Generate an episode using b:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:120.3pt right 164.0pt;background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &lt;sup&gt;A&lt;/sup&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, &lt;sup&gt;R&lt;/sup&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &amp;#8226; &amp;#8226; &amp;#8226; ,&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;\A1\AA &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;\A1\AA &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:345.0pt;margin-bottom:0cm;
margin-left:27.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:12.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;G &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;0 W &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:27.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For t = &lt;span class=aff7&gt;T&lt;/span&gt; &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;1, T &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;2&lt;/span&gt;\A3\AC&lt;span
lang=EN-US&gt;... downto 0:&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 style=&#39;margin-left:44.0pt;line-height:11.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=49Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span class=490&gt;&lt;span lang=EN-US&gt;^ yG &lt;/span&gt;&lt;/span&gt;&lt;span
class=49MingLiU&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=49Batang&gt;&lt;span style=&#39;font-size:9.5pt;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=49Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+i&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;C(S&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;,A&lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;C&lt;span class=aff7&gt;(St,
At&lt;/span&gt;) + W&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:99.0pt;margin-bottom:0cm;
margin-left:44.0pt;margin-bottom:.0001pt;text-indent:26.0pt;line-height:11.75pt;
mso-line-height-rule:exactly;tab-stops:right 304.15pt;background:transparent&#39;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;Q&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;(&lt;sup&gt;S&lt;/sup&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &lt;sup&gt;A&lt;/sup&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span lang=EN-US
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;c(St,A&lt;sub&gt;t&lt;/sub&gt;) &lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;[G &lt;/span&gt;&lt;/sup&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;Q&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;(&lt;sup&gt;S&lt;/sup&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;7 &lt;sup&gt;A&lt;/sup&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)] n(S&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) &lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;argmax&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;sub&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;a&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Q(S&lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, a)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(with
ties broken consistently)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:221.0pt;margin-bottom:31.65pt;
margin-left:44.0pt;text-indent:0cm;line-height:11.75pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If A&lt;/span&gt;&lt;span
class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;=&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(S&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) then ExitForLoop &lt;sup&gt;W&lt;/sup&gt;
&lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;W&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span
class=CenturySchoolbookc&gt;&lt;span lang=EN-US style=&#39;font-size:13.0pt&#39;&gt;\A1\F8&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.0pt;
margin-left:0cm;text-indent:10.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;A potential
problem is that this method learns only from the tails of episodes, when all of
the remaining actions in the episode are greedy. If nongreedy actions are
common, then learning will be slow, particularly for states appearing in the
early portions of long episodes. Potentially, this could greatly slow learning.
There has been insufficient experience with off-policy Monte Carlo methods to assess
how seri&amp;shy;ous this problem is. If it is serious, the most important way to
address it is probably by incorporating temporal-difference learning, the
algorithmic idea developed in the next chapter. Alternatively, if Y is less
than 1, then the idea developed in the next section may also help
significantly.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;Exercise 5.8: Racetrack (programming) &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;Consider driving a race car around a turn like those
shown in Figure 5.6. You want to go as fast as possible, but not so fast as to
run off the track. In our simplified racetrack, the car is at one of a discrete
set of grid positions, the cells in the diagram. The velocity is also discrete,
a number of grid cells moved horizontally and vertically per time step. The
actions are increments to the velocity components. Each may be changed by +1,
\A1\AA1, or 0 in one step, for a total of nine actions. Both velocity components are
restricted to be nonnegative and less than 5, and they cannot both be zero
except at the starting line. Each episode begins in one of the randomly
selected start states with both velocity components zero and ends when the car
crosses the finish line. The rewards are \A1\AA1 for each step until the car crosses
the finish line. If the car hits the track boundary, it is moved back to a
random position on the starting line, both velocity components are reduced to
zero, and the episode continues. Before updating the car\A1\AFs location at each
time step, check to see if the projected path of the car intersects the track
boundary. If it intersects the finish line, the episode ends; if it intersects
anywhere else, the car is&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;span class=90&gt;&lt;span lang=EN-US&gt;Starting line&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
22.55pt;margin-left:70.0pt;text-align:left;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;Figure 5.6: A
couple of right turns for the racetrack task.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:18.0pt;margin-bottom:27.35pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 400.1pt;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;considered
to have hit the track boundary and is sent back to the starting line. To make
the task more challenging, with probability &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang7&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;0.1&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt; at each time step the velocity increments are both
zero, independently of the intended increments. Apply a Monte Carlo control
method to this task to compute the optimal policy from each starting state.
Exhibit several trajectories following the optimal policy (but turn the noise
off for these trajectories).&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l35 level1 lfo21;
tab-stops:37.95pt;background:transparent&#39;&gt;&lt;a name=bookmark77&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;5.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;*Discounting-aware Importance
Sampling&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:18.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;The off-policy
methods that we have considered so far are based on forming importance-
sampling weights for returns considered as unitary wholes, without taking into
ac&amp;shy;count the returns\A1\AF internal structures as sums of discounted rewards. We now
briefly consider cutting-edge research ideas for using this structure to
significantly reduce the variance of off-policy estimators.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:18.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;For example, consider the case where episodes are long and &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang7&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt; is significantly less than 1. For concreteness, say
that episodes last 100 steps and that &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang7&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt; = 0. The return from time &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang7&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt; will then be just Go = R&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang7&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;, but its importance sampling ratio will be&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:18.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:16.1pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;a product of &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang7&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;100&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt; factors,&lt;/span&gt;&lt;/span&gt;&lt;span class=21MingLiU3&gt;&lt;span
style=&#39;font-size:9.0pt&#39;&gt;ū\B6\FEح\9E\E9&lt;/span&gt;&lt;/span&gt;&lt;span class=217&gt;&lt;span lang=ZH-TW&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU3&gt;&lt;span style=&#39;font-size:9.0pt&#39;&gt;ū\BC\E0&lt;/span&gt;&lt;/span&gt;&lt;span class=217&gt;&lt;sup&gt;&lt;span
lang=ZH-TW&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;span lang=ZH-TW&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;\A1\F6 \A1\F6 \A1\F6&lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU3&gt;&lt;span style=&#39;font-size:9.0pt&#39;&gt;ū&lt;/span&gt;&lt;/span&gt;&lt;span class=217&gt;&lt;sup&gt;&lt;span
lang=ZH-TW&gt;9&lt;/span&gt;&lt;/sup&gt;&lt;span lang=ZH-TW&gt;^&lt;sup&gt;9&lt;/sup&gt;:)&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;. In ordinary importance sam&amp;shy;pling, the return will
be scaled by the entire product, but it is really only necessary&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:12.95pt;mso-line-height-rule:
exactly;tab-stops:right 191.1pt 217.95pt left 222.75pt;background:transparent&#39;&gt;&lt;span
class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;to scale b&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;y &lt;sup&gt;the
first factor&lt;/sup&gt;, &lt;sup&gt;b&lt;/sup&gt;y&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;The&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;other &lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang7&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;99&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt; factors&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; TOST \A1\F6 \A1\F6
\A1\F6&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:18.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:12.95pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;are irrelevant
because after the first reward the return has already been determined. These
later factors are all independent of the return and of expected value 1; they
do not change the expected update, but they add enormously to its variance. In
some cases they could even make the variance infinite. Let us now consider an
idea for avoiding this large extraneous variance.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:8.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;The essence of the idea is to think of discounting as determining a
probability of&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection129&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:right 317.55pt center 325.0pt 345.8pt right 373.7pt 399.5pt;
background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;termination or,
equivalently, a &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;degree&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;of partial termination. For&lt;span style=&#39;mso-tab-count:
1&#39;&gt; &lt;/span&gt;any&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;y G&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;[0&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;1),&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;we&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:right 317.55pt center 325.0pt 345.8pt left 372.5pt center 381.4pt;
background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;can think of the
return &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;G&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang9&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;as partly&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;terminating
in one step, to&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;the&lt;span style=&#39;mso-tab-count:
1&#39;&gt; &lt;/span&gt;degree&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;1&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;\A1\AA y&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:179.75pt center 290.45pt 300.5pt left 318.15pt center 345.8pt right 373.7pt 399.5pt;
background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;producing a return of
just the first reward, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;Ri&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;, and
as partly terminating after two steps, to the degree &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang7&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;\A1\AA y&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;y&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;,
producing a return of &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;Rl &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang9&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;, and so on. The latter degree corresponds to
terminating on the second step, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang7&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;\A1\AA y&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;, and
not having already terminated on the first step, &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;y&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;. The&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;degree
of termination&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;on&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;the&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;third&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;step&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;is&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;thus&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:right 176.1pt left 179.75pt center 244.85pt 267.9pt right 317.55pt left 318.15pt center 357.4pt right 399.5pt;
background:transparent&#39;&gt;&lt;span class=21Batang7&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;\A1\AA y)y&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang7&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;with the &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;y&lt;sup&gt;2&lt;/sup&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;reflecting that&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;termination&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;did&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;not occur&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;on&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;either&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;of the&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;first&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.55pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;two steps. The partial returns
here are called &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;flat partial returns&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.85pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:right 317.55pt;
background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t:h
&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;=
&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+i &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+2 &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;\A1\F6 \A1\F6 \A1\F6 &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;\B3\F3&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;a,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=75pt&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;0&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;^ &lt;span class=aff7&gt;t &amp;lt; h&lt;/span&gt; &amp;lt; &lt;sup&gt;T&lt;/sup&gt;,&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.3pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;where \A1\B0flat\A1\B1 denotes the absence
of discounting, and \A1\B0partial\A1\B1 denotes that these returns do not extend all the
way to termination but instead stop at &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;h&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;, called the &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;horizon&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;(and &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;T &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;is the
time of termination of the episode). The conventional full return &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Gt &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;can be viewed as a sum of flat partial returns as
suggested above as follows:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:145.0pt;margin-bottom:0cm;
margin-left:49.0pt;margin-bottom:.0001pt;text-indent:-21.0pt;line-height:16.8pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Gt &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Rt+i &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;YRt+2 &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Y&lt;sup&gt;2&lt;/sup&gt; Rt+3 &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;\A1\F6 \A1\F6 \A1\F6 &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Y&lt;sup&gt;T-t-1&lt;/sup&gt;Rr &lt;/span&gt;&lt;span class=75pt&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;=&lt;sup&gt;(1&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;\A1\AA&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; Y &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+i&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.0pt;
margin-left:49.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;+ (1 &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;\A1\AA y)y &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Rt+i &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Rt+2&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:29.5pt;
margin-left:49.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:179.75pt;
background:transparent&#39;&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;+ (1 &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;\A1\AA y)y &lt;sup&gt;2&lt;/sup&gt; &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Rt+i &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Rt+2&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Rt&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+3&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.5pt;
margin-left:49.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
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lang=EN-US&gt;+ (1 \A1\AA &lt;/span&gt;&lt;span class=CenturySchoolbookb&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;y)y&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;t-t-&lt;/span&gt;&lt;/sup&gt;&lt;span
class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; (&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+i + &lt;/span&gt;&lt;span
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lang=EN-US&gt; + \A1\F6 + &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t -i)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:49.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Y&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;T-t-i&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; (&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+i + &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + \A1\F6 + &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.25pt;
margin-left:93.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;-i&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:49.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;
tab-stops:right 176.1pt;background:transparent&#39;&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;=(1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; \A1\AA&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Y&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;h-t-i&lt;/span&gt;&lt;/sup&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;GG&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;\A3\BA&lt;span lang=EN-US&gt;h + &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Y&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;T-t-i&lt;/span&gt;&lt;/sup&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;GG&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;\A3\BA&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.85pt;
margin-left:93.0pt;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;h=t+i&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:16.55pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
12.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Now we need to scale the flat partial returns by an importance
sampling ratio that is similarly truncated. As &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;GG&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;\A3\BA&lt;span lang=EN-US&gt;h only involves rewards up to a horizon &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;h&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, we only need the ratio of the probabilities up to &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;h&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. We define an ordinary importance-sampling estimator, analogous to
(5.4), as&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:49.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;
tab-stops:right 112.95pt left 118.15pt 179.75pt 259.35pt right 399.5pt;
background:transparent&#39;&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;St\80T(s)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;\A1\AA &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Y&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) ES+i&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Y&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;h-t-i&lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;p&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;h-i &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;GG&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;\A3\BA&lt;span
lang=EN-US&gt;h&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;+&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;T (t)-t-i&lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;p&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;\A3\BA&lt;span
lang=EN-US&gt;T (t)-i&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;\A3\BA&lt;span
lang=EN-US&gt;T (t)&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.65pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
12.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:dashed 210.75pt right 399.5pt;
background:transparent&#39;&gt;&lt;a name=bookmark78&gt;&lt;span class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;V &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark78&#39;&gt;&lt;span class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;s&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; =&lt;span style=&#39;mso-tab-count:2 dashed&#39;&gt;--------------------------------------------------------------------- &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark78&#39;&gt;&lt;span class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;,&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-top:0cm;margin-right:1.0pt;
margin-bottom:10.9pt;margin-left:0cm;text-align:right;text-indent:0cm;
line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;(5.8)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:18.8pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;and a weighted importance-sampling estimator, analogous to (5.5), as&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:49.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;
tab-stops:right 112.95pt left 115.6pt 167.1pt 259.35pt right 399.5pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Et\80T(s)&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;((1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;\A1\AA &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Y&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;h-t-i&lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;p&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=-2pt0&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;\A3\BA&lt;span lang=EN-US&gt;h-i&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=-2pt0&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;\A3\BA&lt;span lang=EN-US&gt;h&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;+&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;T(t)-t-i&lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;p&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;T(t)-i&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;T(t))&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:12.0pt;line-height:8.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;V(s)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:76.0pt;text-indent:0cm;line-height:11.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;EteT(s)
((1 \A1\AA T)ES+i&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; Y&lt;sup&gt;h-t-i&lt;/sup&gt;Pt&lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;h-i + Y&lt;sup&gt;T(t)-t-i&lt;/sup&gt;Pt&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;T(t)-i)&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection130&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;We call these two estimators &lt;span class=aff7&gt;discounting-aware&lt;/span&gt;
importance sampling estimators. They take into account the discount rate but
have no effect (are the same as the off-policy estimators from Section &lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;5.5) &lt;/span&gt;&lt;span lang=EN-US&gt;if &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Y &lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;= 1.&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l35 level1 lfo21;
tab-stops:36.95pt;background:transparent&#39;&gt;&lt;a name=bookmark79&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;5.9&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;*Per-reward Importance Sampling&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.55pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;There is one more way in which the structure of the return as a sum
of rewards can be taken into account in off-policy importance sampling, a way
that may be able to reduce variance even in the absence of discounting (that
is, even if &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;Y &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= 1). In the off-policy
estimators (5.4) and (5.5), each term of the sum in the numerator is itself a
sum:&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.0pt;
margin-left:28.0pt;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:
right dashed 272.8pt;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;Pt&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;:&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;T &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;_i&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;Gt = Pt&lt;/span&gt;&lt;/span&gt;&lt;span class=21MingLiU2&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;T &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;_1 &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;(Rt&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+1 &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;+ YRt&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;+2 &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;+&lt;span
style=&#39;mso-tab-count:1 dashed&#39;&gt;------------- &lt;/span&gt;+ Y&lt;sup&gt;T&lt;/sup&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;_&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batang9&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;RT)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.85pt;
margin-left:72.0pt;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:
right dashed 327.1pt blank 402.0pt;background:transparent&#39;&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;Pt&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;:&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;T &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;_1&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;+1 + &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;YPt&lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU2&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;T &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;_&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang9&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang9&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt; +&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-tab-count:1 dashed&#39;&gt;-------------- &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;Y&lt;sup&gt;T&lt;/sup&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;_&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batang9&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;Pt&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;:&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;T &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;_&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang9&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;T &amp;#8226;&lt;span
style=&#39;mso-tab-count:1 dashed&#39;&gt;------------------ &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(5&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;.&lt;sup&gt;10)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The off-policy estimators rely on the expected values of these
terms; let us see if we can write them in a simpler way. Note that each
sub-term of (5.10) is a product of a random reward and a random
importance-sampling ratio. For example, the first sub-term can be written,
using (5.3), as&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:61.0pt;margin-bottom:.0001pt;line-height:9.5pt;mso-line-height-rule:
exactly;tab-stops:284.7pt;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;R &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;|&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;) &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang9&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;sup&gt;|&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang9&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;) &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;n&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang9&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;|&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang9&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;_&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang9&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;|&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;_&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang9&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;R&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.75pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Pt&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;:&lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;_&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;b&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;At&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;|&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;b&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;At&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+i|&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+i) &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;b&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;At&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;|&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) ... &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;b&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;A&lt;sub&gt;T&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;_i|&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;S&lt;sub&gt;T&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;_i) &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:1.65pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Now notice that, of all these factors, only the first and the last
(the reward) are correlated; all the other ratios are independent random
variables whose expected value is one:&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:294.0pt;margin-bottom:
10.35pt;margin-left:61.0pt;text-align:left;line-height:15.1pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a name=bookmark80&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;n(Ak |Sfc) b(Ak |Sk&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;span style=&#39;mso-bookmark:bookmark80&#39;&gt;&lt;span
class=21MingLiU4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark80&#39;&gt;&lt;span class=21MingLiU4&gt;&lt;span style=&#39;font-size:
9.0pt;mso-ansi-language:ZH-TW&#39;&gt;\A1\B9&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.55pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Thus, because the expectation of the product of independent random
variables is the product of their expectations, all the ratios except the first
drop out in expectation, leaving just&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;E[p&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;:&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;_iR&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+i] = E[p&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;:&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;R&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;i].&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:122.0pt;margin-bottom:0cm;
margin-left:28.0pt;margin-bottom:.0001pt;text-indent:-27.0pt;line-height:25.2pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If we
repeat this analysis for the kth term of (5.10), we get E[p&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;:&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;_iR&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;] = E[p&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;:&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;sub&gt;&lt;span lang=EN-US&gt;+&lt;/span&gt;&lt;/sub&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;_iR&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;].&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:5.05pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;It follows then that the expectation
of our original term (5.10) can be written&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:25.2pt;mso-line-height-rule:exactly;
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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
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   &lt;tr&gt;
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    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
    class=affa&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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    &lt;![if !mso]&gt;&lt;/td&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;E[pt:T _iGt] = E where&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:right dashed 272.8pt;background:transparent&#39;&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;G&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;= P&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t:t&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;+ YP&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t:t+i&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;+ Y &lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;P&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t:t+2&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+3 &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;+&lt;span
style=&#39;mso-tab-count:1 dashed&#39;&gt; &lt;/span&gt;+ Y&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;_&lt;sup&gt;t&lt;/sup&gt;_&lt;sup&gt;1&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;P&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t:T _iRt &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection131&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:30.15pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;We call this idea &lt;span class=aff7&gt;per-reward&lt;/span&gt; importance
sampling. It follows immediately that there is an alternate importance-sampling
estimator, with the same unbiased expectation as the OIS estimator (5.4), using
&lt;span class=aff7&gt;GG&lt;/span&gt;t:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.2pt;
margin-left:30.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;mso-list:l91 level1 lfo20;
tab-stops:43.5pt 374.4pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;![endif]&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(s)&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; = &lt;sup&gt;5&lt;/sup&gt;iffr,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(5&lt;/sup&gt;.&lt;sup&gt;n)&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.25pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;which we might expect to sometimes be of lower variance.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:2.8pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Is there a per-reward version of &lt;span class=aff7&gt;weighted&lt;/span&gt;
importance sampling? This is less clear. So far, all the estimators that have
been proposed for this that we know of are not consistent (that is, they do not
converge to the true value with infinite data).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.55pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;tab-stops:right 401.8pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;*Exercise 5.9 Modify the algorithm for
off-policy Monte Carlo control (page 121) to use the idea of the truncated
weighted-average estimator (5.9). Note that you will first need to convert this
equation to action values.&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.55pt;
margin-left:3.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l35 level1 lfo21;
tab-stops:43.5pt;background:transparent&#39;&gt;&lt;a name=bookmark81&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;5.10&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Off-policy Returns&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.55pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;It will turn out that a special form of return works best, producing
updates of the lowest variance. One of the most insightful way of writing it is
in terms of a special error called the temporal-difference (TD) error. The TD
error is defined by&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.35pt;
margin-left:30.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:right 401.8pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;5t = Rt &lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + YV (St &lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) \A1\AA V (St),&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(5.12)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:16.55pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where V(s) is the estimate of the value of state s on this episode.
Using this, the state-value off-policy return is defined by&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;
tab-stops:right 401.8pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Gp = Y&lt;sup&gt;k-t&lt;/sup&gt;Pt&lt;/span&gt;\A3\BA&lt;span
lang=EN-US&gt;k &lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;֪&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;+ V (St)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(5.13)&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection132&gt;

&lt;p class=MsoNormal style=&#39;margin-top:4.05pt;margin-right:0cm;margin-bottom:
4.05pt;margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection133&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The corresponding Monte Carlo algorithm would be wait until the end
of the episode, then go back over update&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:29.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;
tab-stops:right 110.6pt 126.2pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;V&#39;(&lt;sub&gt;s&lt;/sub&gt;)
&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\B6\FE&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span class=aff&gt;&lt;span lang=EN-US&gt;Z&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;eT(&lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;s&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;)
&lt;span class=aff&gt;G&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbookd&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:29.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;
mso-list:l91 level1 lfo20;tab-stops:39.8pt right 110.6pt 126.2pt;background:
transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;![endif]&gt;&lt;span
class=1pt3&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(s)&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;|T(s)|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;,&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:33.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;an off-line algorithm. It would the time steps performing the&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-right:1.0pt;text-align:right;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;(5.14)&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection134&gt;

&lt;p class=MsoNormal style=&#39;margin-top:4.1pt;margin-right:0cm;margin-bottom:4.1pt;
margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection135&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l35 level1 lfo21;
tab-stops:44.9pt;background:transparent&#39;&gt;&lt;a name=bookmark82&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;5.11&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Summary&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The Monte Carlo methods presented in
this chapter learn value functions and op&amp;shy;timal policies from experience in the
form of &lt;span class=aff7&gt;sample episodes&lt;/span&gt;. This gives them at least three
kinds of advantages over DP methods. First, they can be used to learn optimal
behavior directly from interaction with the environment, with no model of the
environment\A1\AFs dynamics. Second, they can be used with simulation or &lt;span
class=aff7&gt;sample models&lt;/span&gt;. For surprisingly many applications it is easy
to simulate sample episodes&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;even though it
is difficult to construct the kind of explicit model of transition proba&amp;shy;bilities
required by DP methods. Third, it is easy and efficient to &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;focus&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;Monte Carlo methods on a small subset of the states.
A region of special interest can be accurately evaluated without going to the
expense of accurately evaluating the rest of the state set (we explore this
further in Chapter &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang7&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;A fourth advantage of Monte Carlo methods, which we discuss later in
the book, is that they may be less harmed by violations of the Markov property.
This is because they do not update their value estimates on the basis of the
value estimates of successor states. In other words, it is because they do not
bootstrap.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;In designing Monte Carlo control methods we have followed the
overall schema of &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;generalized policy iteration&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;(GPI) introduced in Chapter 4. GPI involves
interacting processes of policy evaluation and policy improvement. Monte Carlo
methods provide an alternative policy evaluation process. Rather than use a
model to compute the value of each state, they simply average many returns that
start in the state. Because a state\A1\AFs value is the expected return, this
average can become a good approximation to the value. In control methods we are
particularly interested in approximating action-value functions, because these
can be used to improve the policy without requiring a model of the
environment\A1\AFs transition dynamics. Monte Carlo methods intermix policy
evaluation and policy improvement steps on an episode-by-episode basis, and can
be incrementally implemented on an episode-by-episode basis.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;Maintaining &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;sufficient exploration&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;is an issue in Monte Carlo control methods. It is not
enough just to select the actions currently estimated to be best, because then
no returns will be obtained for alternative actions, and it may never be
learned that they are actually better. One approach is to ignore this problem
by assuming that episodes begin with state-action pairs randomly selected to
cover all possibilities. Such &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;exploring starts&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;can sometimes be arranged in applications with
simulated episodes, but are unlikely in learning from real experience. In &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;on-policy&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;methods, the agent commits to always exploring and
tries to find the best policy that still explores. In &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;off-policy&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;methods, the agent also explores, but learns a
deterministic optimal policy that may be unrelated to the policy followed.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=21Batang4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Off-policy prediction&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;refers to learning the value function of a &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;target policy&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;from data generated by a different &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;behavior policy&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;. Such learning methods are based on some form of &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;importance sampling&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;, that is, on weighting returns by the ratio of the
probabilities of taking the observed actions under the two policies. &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Ordinary im&amp;shy;portance
sampling&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;uses a simple average of
the weighted returns, whereas &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;weighted importance sampling&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;uses a weighted average. Ordinary importance
sampling pro&amp;shy;duces unbiased estimates, but has larger, possibly infinite, variance,
whereas weighted importance sampling always has finite variance and is
preferred in practice. Despite their conceptual simplicity, off-policy Monte
Carlo methods for both prediction and control remain unsettled and are a
subject of ongoing research.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.35pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;The Monte
Carlo methods treated in this chapter differ from the DP methods treated in the
previous chapter in two major ways. First, they operate on sample experience,
and thus can be used for direct learning without a model. Second, they do not
bootstrap. That is, they do not update their value estimates on the basis of
other value estimates. These two differences are not tightly linked, and can be
separated. In the next chapter we consider methods that learn from experience,
like Monte Carlo methods, but also bootstrap, like DP methods.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.8pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark83&gt;&lt;span lang=EN-US&gt;Bibliographical and Historical Remarks&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;The term
\A1\B0Monte Carlo\A1\B1 dates from the 1940s, when physicists at Los Alamos de&amp;shy;vised
games of chance that they could study to help understand complex physical
phenomena relating to the atom bomb. Coverage of Monte Carlo methods in this
sense can be found in several textbooks (e.g., Kalos and Whitlock, 1986;
Rubinstein, 1981).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;An early use of Monte Carlo methods to estimate action values in a
reinforcement learning context was by Michie and Chambers (1968). In pole
balancing (Example 3.4), they used averages of episode durations to assess the
worth (expected balancing \A1\B0life\A1\B1) of each possible action in each state, and
then used these assessments to control action selections. Their method is
similar in spirit to Monte Carlo ES with every- visit MC estimates. Narendra
and Wheeler (1986) studied a Monte Carlo method for ergodic finite Markov
chains that used the return accumulated between successive visits to the same
state as a reward for adjusting a learning automaton\A1\AFs action probabilities.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;Barto and Duff (1994) discussed policy evaluation in the context of
classical Monte Carlo algorithms for solving systems of linear equations. They
used the analysis of Curtiss (1954) to point out the computational advantages
of Monte Carlo policy eval&amp;shy;uation for large problems. Singh and Sutton (1996)
distinguished between every-visit and first-visit MC methods and proved results
relating these methods to reinforce&amp;shy;ment learning algorithms.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;The blackjack example is based on an example used by Widrow, Gupta,
and Maitra (1973). The soap bubble example is a classical Dirichlet problem
whose Monte Carlo solution was first proposed by Kakutani (1945; see Hersh and
Griego, 1969; Doyle and Snell, 1984). The racetrack exercise is adapted from
Barto, Bradtke, and Singh (1995), and from Gardner (1973).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;Monte Carlo ES was introduced in the 1998 edition of this book. That
may have been the first explicit connection between Monte Carlo estimation and
control methods based on policy iteration.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;Efficient off-policy learning has become recognized as an important
challenge that arises in several fields. For example, it is closely related to
the idea of \A1\B0interventions\A1\B1 and \A1\B0counterfactuals\A1\B1 in probabalistic graphical
(Bayesian) models (e.g., Pearl, 1995; Balke and Pearl, 1994). Off-policy
methods using importance sampling have a long history and yet still are not
well understood. Weighted importance sampling, which is also sometimes called
normalized importance sampling (e.g., Koller and Friedman, 2009), is discussed
by Rubinstein (1981), Hesterberg (1988), Shelton (2001), and Liu (&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batanga&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;2001&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;) among others.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:8.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;Our treatment of the idea of discounting-aware importance sampling
is based on the analysis of Sutton, Mahmood, Precup, and van Hasselt (2014). It
has been worked out most fully to date by Mahmood (in preparation; Mahmood, van
Hasselt, and Sutton, 2014). Per-reward importance sampling was introduced by
Precup, Sutton, and Singh (2000), who called it \A1\B0per-decision\A1\B1 importance sampling.
These works also combine off-policy learning with temporal-difference learning,
eligibility traces, and approximation methods, introducing subtle issues that
we consider in later chapters.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin:0cm;margin-bottom:.0001pt;text-align:
left;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;The target policy in
off-policy learning is sometimes referred to in the literature as the
\A1\B0estimation\A1\B1 policy, as it was in the first edition of this book.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection136&gt;

&lt;p class=8a style=&#39;margin-bottom:29.35pt;line-height:19.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Chapter 6&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f1 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:37.55pt;
margin-left:0cm;line-height:22.0pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark84&gt;&lt;span lang=EN-US&gt;Temporal-Difference Learning&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If one had to identify one idea as
central and novel to reinforcement learning, it would undoubtedly be &lt;span
class=aff7&gt;temporal-difference&lt;/span&gt; (TD) learning. TD learning is a
combination of Monte Carlo ideas and dynamic programming (DP) ideas. Like Monte
Carlo methods, TD methods can learn directly from raw experience without a
model of the environment\A1\AFs dynamics. Like DP, TD methods update estimates based
in part on other learned estimates, without waiting for a final outcome (they
bootstrap). The relationship between TD, DP, and Monte Carlo methods is a
recurring theme in the theory of reinforcement learning; this chapter is the
beginning of our exploration of it. Before we are done, we will see that these
ideas and methods blend into each other and can be combined in many ways. In
particular, in Chapter 7 we introduce n-step algorithms, which provide a bridge
from TD to Monte Carlo methods, and in Chapter 12 we introduce the TD(A)
algorithm, which seamlessly unifies them.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;As usual, we start by focusing on the policy evaluation or &lt;span
class=aff7&gt;prediction&lt;/span&gt; problem, that of estimating the value function v^
for a given policy n. For the &lt;span class=aff7&gt;control&lt;/span&gt; problem (finding
an optimal policy), DP, TD, and Monte Carlo methods all use some variation of
generalized policy iteration (GPI). The differences in the methods are
primarily differences in their approaches to the prediction problem.&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l37 level1 lfo23;
tab-stops:36.5pt;background:transparent&#39;&gt;&lt;a name=bookmark85&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;TD Prediction&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Both TD and Monte Carlo methods use experience to solve the
prediction problem. Given some experience following a policy n, both methods
update their estimate V of vn for the nonterminal states St occurring in that
experience. Roughly speaking, Monte Carlo methods wait until the return
following the visit is known, then use that return as a target for V(St). A
simple every-visit Monte Carlo method suitable for nonstationary environments
is&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.25pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 398.3pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;V(St) ^ V(St) + a[Gt \A1\AA V(St)],&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where Gt is the actual return following time t, and &lt;span
class=aff7&gt;a&lt;/span&gt; is a constant step-size parameter (c.f., Equation 2.4). Let
us call this method &lt;span class=aff7&gt;constant-a MC.&lt;/span&gt; Whereas Monte Carlo
methods must wait until the end of the episode to determine the increment to
V(St) (only then is Gt known), TD methods need to wait only until the next time
step. At time t + &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; they immediately form a target and make
a useful update using the observed reward Rt+i and the estimate V(St+i). The
simplest TD method makes the update&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.25pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 400.2pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;V(St) ^ V(St) + a [Rt+i + YV(St+i) \A1\AA
V(St)]&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.3pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;immediately on transition to St+i and receiving Rt+i. In effect, the
target for the Monte Carlo update is Gt, whereas the target for the TD update
is Rt+i + yV(St+i). This TD method is called &lt;span class=aff7&gt;TD(0),&lt;/span&gt; or &lt;span
class=aff7&gt;one-step TD,&lt;/span&gt; because it is a special case of the TD(A) and
n-step TD methods developed in Chapter 12 and Chapter 7. The box below
specifies TD(0) completely in procedural form.&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:400.1pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=533 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left style=&#39;padding-top:0cm;padding-right:0cm;
  padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=afffff9 align=left style=&#39;text-align:left;line-height:9.5pt;
  mso-line-height-rule:exactly;background:black;mso-element:frame;mso-element-frame-width:
  400.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=affc&gt;&lt;span lang=EN-US&gt;Tabular
  TD(0) for estimating v^&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;div align=center&gt;
  &lt;table class=MsoNormalTable border=0 cellspacing=0 cellpadding=0
   style=&#39;border-collapse:collapse;mso-table-layout-alt:fixed;mso-table-overlap:
   never;mso-padding-alt:0cm .5pt 0cm .5pt&#39;&gt;
   &lt;tr style=&#39;mso-yfti-irow:0;mso-yfti-firstrow:yes;height:18.5pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;td width=228 valign=top style=&#39;width:170.9pt;border:none;border-left:solid windowtext 1.0pt;
    mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:18.5pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=afffff6 align=right style=&#39;margin-right:5.0pt;text-align:right;
    text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:
    transparent;mso-element:frame;mso-element-frame-width:400.1pt;mso-element-wrap:
    no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
    column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
    lang=EN-US&gt;Input: the policy n to be evaluated&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=306 valign=top style=&#39;width:229.2pt;border:none;border-right:
    solid windowtext 1.0pt;mso-border-right-alt:solid windowtext .5pt;
    background:white;padding:0cm .5pt 0cm .5pt;height:18.5pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:400.1pt;
    mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
    mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
    .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
   &lt;/tr&gt;
   &lt;tr style=&#39;mso-yfti-irow:1;height:12.25pt;mso-height-rule:exactly&#39;&gt;
    &lt;td width=228 valign=top style=&#39;width:170.9pt;border:none;border-left:solid windowtext 1.0pt;
    mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:12.25pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=afffff6 align=right style=&#39;margin-right:5.0pt;text-align:right;
    text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:
    transparent;mso-element:frame;mso-element-frame-width:400.1pt;mso-element-wrap:
    no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
    column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
    lang=EN-US&gt;Initialize V (s) arbitrarily (e.g., V (s)&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=306 valign=top style=&#39;width:229.2pt;border:none;border-right:
    solid windowtext 1.0pt;mso-border-right-alt:solid windowtext .5pt;
    background:white;padding:0cm .5pt 0cm .5pt;height:12.25pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-indent:0cm;line-height:9.5pt;
    mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:400.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US&gt;=0, &lt;/span&gt;&lt;span
    class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
    lang=EN-US&gt;s &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
    style=&#39;font-size:7.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;S+)&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
   &lt;/tr&gt;
   &lt;tr style=&#39;mso-yfti-irow:2;height:12.0pt;mso-height-rule:exactly&#39;&gt;
    &lt;td width=228 valign=top style=&#39;width:170.9pt;border:none;border-left:solid windowtext 1.0pt;
    mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:12.0pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=afffff6 style=&#39;margin-left:10.0pt;text-indent:0cm;line-height:
    9.5pt;mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:400.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US&gt;Repeat (for
    each episode):&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=306 valign=top style=&#39;width:229.2pt;border:none;border-right:
    solid windowtext 1.0pt;mso-border-right-alt:solid windowtext .5pt;
    background:white;padding:0cm .5pt 0cm .5pt;height:12.0pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:400.1pt;
    mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
    mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
    .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
   &lt;/tr&gt;
   &lt;tr style=&#39;mso-yfti-irow:3;height:11.05pt;mso-height-rule:exactly&#39;&gt;
    &lt;td width=228 valign=top style=&#39;width:170.9pt;border:none;border-left:solid windowtext 1.0pt;
    mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:11.05pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=afffff6 style=&#39;margin-left:22.0pt;text-indent:0cm;line-height:
    9.5pt;mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:400.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US&gt;Initialize
    S&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=306 valign=top style=&#39;width:229.2pt;border:none;border-right:
    solid windowtext 1.0pt;mso-border-right-alt:solid windowtext .5pt;
    background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:400.1pt;
    mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
    mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
    .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
   &lt;/tr&gt;
   &lt;tr style=&#39;mso-yfti-irow:4;height:13.2pt;mso-height-rule:exactly&#39;&gt;
    &lt;td width=228 valign=top style=&#39;width:170.9pt;border:none;border-left:solid windowtext 1.0pt;
    mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:13.2pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=afffff6 align=right style=&#39;margin-right:5.0pt;text-align:right;
    text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:
    transparent;mso-element:frame;mso-element-frame-width:400.1pt;mso-element-wrap:
    no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
    column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
    lang=EN-US&gt;Repeat (for each step of episode):&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=306 valign=top style=&#39;width:229.2pt;border:none;border-right:
    solid windowtext 1.0pt;mso-border-right-alt:solid windowtext .5pt;
    background:white;padding:0cm .5pt 0cm .5pt;height:13.2pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:400.1pt;
    mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
    mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
    .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
   &lt;/tr&gt;
   &lt;tr style=&#39;mso-yfti-irow:5;height:11.3pt;mso-height-rule:exactly&#39;&gt;
    &lt;td width=228 valign=top style=&#39;width:170.9pt;border:none;border-left:solid windowtext 1.0pt;
    mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:11.3pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=afffff6 style=&#39;margin-left:36.0pt;text-indent:0cm;line-height:
    9.5pt;mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:400.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US&gt;A &lt;/span&gt;&lt;span
    class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
    lang=EN-US&gt;action given by n for S&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=306 valign=top style=&#39;width:229.2pt;border:none;border-right:
    solid windowtext 1.0pt;mso-border-right-alt:solid windowtext .5pt;
    background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:400.1pt;
    mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
    mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
    .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
   &lt;/tr&gt;
   &lt;tr style=&#39;mso-yfti-irow:6;height:11.05pt;mso-height-rule:exactly&#39;&gt;
    &lt;td width=228 valign=top style=&#39;width:170.9pt;border:none;border-left:solid windowtext 1.0pt;
    mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:11.05pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=afffff6 style=&#39;margin-left:36.0pt;text-indent:0cm;line-height:
    9.5pt;mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:400.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US&gt;Take action
    A, observe R, S&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=306 valign=top style=&#39;width:229.2pt;border:none;border-right:
    solid windowtext 1.0pt;mso-border-right-alt:solid windowtext .5pt;
    background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:400.1pt;
    mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
    mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
    .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
   &lt;/tr&gt;
   &lt;tr style=&#39;mso-yfti-irow:7;height:13.45pt;mso-height-rule:exactly&#39;&gt;
    &lt;td width=228 valign=top style=&#39;width:170.9pt;border:none;border-left:solid windowtext 1.0pt;
    mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:13.45pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=afffff6 style=&#39;margin-left:36.0pt;text-indent:0cm;line-height:
    11.5pt;mso-line-height-rule:exactly;background:transparent;mso-element:
    frame;mso-element-frame-width:400.1pt;mso-element-wrap:no-wrap-beside;
    mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
    mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
    lang=EN-US&gt;V(S) &lt;/span&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span lang=EN-US
    style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;V(S&lt;/span&gt;&lt;span
    class=MingLiUf9&gt;&lt;span lang=EN-US style=&#39;font-size:11.5pt;mso-ansi-language:
    EN-US&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
    style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;a[R &lt;/span&gt;&lt;span
    class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
    style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;yV(S&lt;sup&gt;7&lt;/sup&gt;)&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=306 valign=top style=&#39;width:229.2pt;border:none;border-right:
    solid windowtext 1.0pt;mso-border-right-alt:solid windowtext .5pt;
    background:white;padding:0cm .5pt 0cm .5pt;height:13.45pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-indent:0cm;line-height:9.5pt;
    mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:400.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMS5&gt;&lt;span
    lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;V (S)]&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
   &lt;/tr&gt;
   &lt;tr style=&#39;mso-yfti-irow:8;height:10.8pt;mso-height-rule:exactly&#39;&gt;
    &lt;td width=228 valign=top style=&#39;width:170.9pt;border:none;border-left:solid windowtext 1.0pt;
    mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
    height:10.8pt;mso-height-rule:exactly&#39;&gt;
    &lt;p class=afffff6 style=&#39;margin-left:36.0pt;text-indent:0cm;line-height:
    9.5pt;mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:400.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US&gt;S &lt;/span&gt;&lt;span
    class=ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
    lang=EN-US&gt;S&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
    9.0pt&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=306 valign=top style=&#39;width:229.2pt;border:none;border-right:
    solid windowtext 1.0pt;mso-border-right-alt:solid windowtext .5pt;
    background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:400.1pt;
    mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
    mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
    .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
   &lt;/tr&gt;
   &lt;tr style=&#39;mso-yfti-irow:9;mso-yfti-lastrow:yes;height:21.1pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;td width=228 valign=top style=&#39;width:170.9pt;border-top:none;border-left:
    solid windowtext 1.0pt;border-bottom:solid windowtext 1.0pt;border-right:
    none;mso-border-left-alt:solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
    background:white;padding:0cm .5pt 0cm .5pt;height:21.1pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;p class=afffff6 style=&#39;margin-left:22.0pt;text-indent:0cm;line-height:
    9.5pt;mso-line-height-rule:exactly;background:transparent;mso-element:frame;
    mso-element-frame-width:400.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
    paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
    mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US&gt;until S is
    terminal&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
    &lt;td width=306 valign=top style=&#39;width:229.2pt;border-top:none;border-left:
    none;border-bottom:solid windowtext 1.0pt;border-right:solid windowtext 1.0pt;
    mso-border-bottom-alt:solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;
    background:white;padding:0cm .5pt 0cm .5pt;height:21.1pt;mso-height-rule:
    exactly&#39;&gt;
    &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:400.1pt;
    mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
    mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
    .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;/div&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:12.65pt;margin-right:1.0pt;margin-bottom:
12.5pt;margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Because the TD(0) bases its
update in part on an existing estimate, we say that it is a &lt;span class=aff7&gt;bootstrapping&lt;/span&gt;
method, like DP. We know from Chapter 3 that&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:16.55pt;mso-line-height-rule:exactly;
tab-stops:right 400.2pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;v&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(s) == E&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;[G&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;| S&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= s]&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(6.3)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:56.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:16.55pt;mso-line-height-rule:exactly;
tab-stops:right 400.2pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=E&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;[R&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+i + YG&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; | S&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= s]&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(from
(3.3))&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:11.5pt;
margin-left:56.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:16.55pt;mso-line-height-rule:exactly;tab-stops:right 400.2pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=E&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;[R&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + Yv&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(S&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+i) | S&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;= s].&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(6.4)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Roughly speaking, Monte Carlo methods use an
estimate of (6.3) as a target, whereas DP methods use an estimate of (6.4) as a
target. The Monte Carlo target is an estimate because the expected value in
(6.3) is not known; a sample return is used in place of the real expected
return. The DP target is an estimate not because of the expected values, which
are assumed to be completely provided by a model of the environment, but
because v&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(S&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+i) is not known and the current estimate, V(S&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+i), is used instead. The TD target is an estimate for both reasons:
it samples the expected values in (6.4) &lt;span class=aff7&gt;and&lt;/span&gt; it uses the
current estimate V instead of the true v&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. Thus, TD
methods combine the sampling of Monte Carlo with the bootstrapping of DP. As we
shall see, with care and imagination this can take us a long way toward obtaining
the advantages of both Monte Carlo and DP methods.&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection137&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:right 386.9pt;background:transparent&#39;&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-begin&#39;&gt;&lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;TOC \o &amp;quot;1-5&amp;quot; \h \z &lt;span
style=&#39;mso-element:field-separator&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;span lang=EN-US&gt;The
diagram to the right is the backup diagram for tabular TD(0). The&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Q&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:right 398.85pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;value
estimate for the state node at the top of the backup diagram is up-&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;{&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:right 398.85pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;dated
on the basis of the one sample transition from it to the immediately&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;|&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:right 398.85pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;following
state. We refer to TD and Monte Carlo updates as &lt;span class=affd&gt;sample back-&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUfd&gt;&lt;span style=&#39;font-size:8.5pt&#39;&gt;\A9\96&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:right 398.85pt;background:transparent&#39;&gt;&lt;span class=affd&gt;&lt;span
lang=EN-US&gt;ups&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; because they involve looking
ahead to a sample successor state (or&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sub&gt;TD(0)&lt;/sub&gt;&lt;/span&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-end&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;state-action
pair), using the value of the successor and the reward along the way to compute
a backed-up value, and then changing the value of the original state (or
state-action pair) accordingly. &lt;span class=aff7&gt;Sample&lt;/span&gt; backups differ
from the &lt;span class=aff7&gt;full &lt;/span&gt;backups of DP methods in that they are
based on a single sample successor rather than on a complete distribution of
all possible successors.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:7.55pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Finally, note that the quantity in brackets in the TD(0) update is a
sort of error, measuring the difference between the estimated value of St and
the better estimate Rt&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + yV(St&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;). This quantity, called the &lt;span class=aff7&gt;TD error,&lt;/span&gt;
arises in various forms through&amp;shy;out reinforcement learning:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.85pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:right 99.05pt 189.7pt left 377.0pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;5t ==&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;Rt
&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + YV (St &lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) \A1\AA&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;V (St).&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(6.5)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
102.3pt 215.8pt right 374.7pt left 377.0pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Notice that the TD&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;error
at each time is the&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;error in the estimate &lt;span
class=aff7&gt;made at&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;that&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;time&lt;/span&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:4.1pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Because the TD error depends on the next state and next reward, it
is not actually available until one time step later. That is, &amp;amp; is the
error in V(St), available at time t + 1. Also note that if the array V does not
change during the episode (as it does not in Monte Carlo methods), then the
Monte Carlo error can be written as a sum of TD errors:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:15.85pt;mso-line-height-rule:exactly;
tab-stops:right 398.85pt;background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t &lt;sup&gt;\A1\AA V(S&lt;/sup&gt;t&lt;sup&gt;)&lt;/sup&gt; = &lt;sup&gt;R&lt;/sup&gt;t&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + 7^+1 &lt;sup&gt;\A1\AA V(S&lt;/sup&gt;t&lt;sup&gt;)&lt;/sup&gt; + 7&lt;sup&gt;V(S&lt;/sup&gt;t+&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;) \A1\AA&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; 7&lt;sup&gt;V(S&lt;/sup&gt;t+&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(from
(3&lt;/sup&gt;.&lt;sup&gt;3))&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:88.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:15.85pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=^t + &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; (Gt&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;.1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; \A1\AA V&lt;sub&gt;(&lt;/sub&gt; (St.&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;))&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:88.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:18.25pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=&lt;/span&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;amp; &lt;/span&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;7&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;&amp;#12316;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;1 &lt;/span&gt;&lt;span lang=EN-US&gt;+ 7&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; (Gt&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;.2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; \A1\AA V (S&lt;sub&gt;m&lt;/sub&gt;))&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:88.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:18.25pt;mso-line-height-rule:exactly;
tab-stops:right 189.7pt left 197.45pt 198.65pt 215.8pt 227.45pt;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;=^t + &lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;7&amp;amp;&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;1&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+ 7&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;amp;&lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=ZH-TW style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6 \A1\F6 \A1\F6&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;+&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;7&lt;sup&gt;T-t-&lt;/sup&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;^T&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;-1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + 7&lt;sup&gt;T-t&lt;/sup&gt; (Gt \A1\AA V (St ))&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:88.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:18.25pt;mso-line-height-rule:exactly;
tab-stops:right 189.7pt left 197.45pt 198.65pt 215.8pt 227.45pt;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;=^t + &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=ZH-TW
style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;&amp;#12316;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=ZH-TW style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+ &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=ZH-TW style=&#39;font-size:9.0pt;
mso-ansi-language:ZH-TW&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;%&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=ZH-TW style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6\A1\F6\A1\F6&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;+&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;7&lt;sup&gt;T-t-&lt;/sup&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;^T&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;-1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + 7&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;T-t&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;(0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; \A1\AA &lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:88.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;T -1&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.0pt;
margin-left:114.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 398.85pt;
background:transparent&#39;&gt;&lt;span class=aff7&gt;&lt;span lang=EN-US&gt;H&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&amp;#8226;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.75pt;
margin-left:88.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;k&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;This identity is not exact if V is updated during the episode (as it
is in TD(0)), but if the step size is small then it may still hold approximately.
Generalizations of this identity play an important role in the theory and
algorithms of temporal-difference learning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:11.8pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 398.85pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 6.1 If V changes during the
episode, then (&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) only holds approximately; what would the difference be between the
two sides? Let Vt denote the array of state values used at time t in the TD
error (6.5) and in the TD update (6.2). Redo the derivation above to determine
the additional amount that must be added to the sum of TD errors in order to
equal the Monte Carlo error.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 6.1: Driving Home Each day as you drive
home from work, you try to predict how long it will take to get home. When you
leave your office, you note the&lt;br clear=all style=&#39;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;time, the day
of week, the weather, and anything else that might be relevant. Say on this
Friday you are leaving at exactly &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batanga&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;pm, and you estimate that it will take 30
minutes to get home. As you reach your car it is 6:05, and you notice it is
starting to rain. Traffic is often slower in the rain, so you reestimate that
it will take 35 minutes from then, or a total of 40 minutes. Fifteen minutes
later you have completed the highway portion of your journey in good time. As
you exit onto a secondary road you cut your estimate of total travel time to 35
minutes. Unfortunately, at this point you get stuck behind a slow truck, and
the road is too narrow to pass. You end up having to follow the truck until you
turn onto the side street where you live at 6:40. Three minutes later you are
home. The sequence of states, times, and predictions is thus as follows:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f align=left style=&#39;margin-top:0cm;margin-right:49.0pt;margin-bottom:
0cm;margin-left:15.0pt;margin-bottom:.0001pt;text-align:left;text-indent:139.0pt;
line-height:13.7pt;mso-line-height-rule:exactly;tab-stops:center 184.7pt right 253.55pt 266.5pt 284.5pt 321.7pt 350.05pt;
background:transparent&#39;&gt;&lt;span class=46&gt;&lt;span lang=EN-US&gt;Elapsed Time Predicted
Predicted State&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;(minutes)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Time&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;to&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Go&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Total&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Time&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;table class=MsoNormalTable border=0 cellspacing=0 cellpadding=0
 style=&#39;margin-left:.5pt;border-collapse:collapse;mso-table-layout-alt:fixed;
 mso-table-overlap:never;mso-padding-alt:0cm .5pt 0cm .5pt&#39;&gt;
 &lt;tr style=&#39;mso-yfti-irow:0;mso-yfti-firstrow:yes;height:12.95pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;td width=195 valign=top style=&#39;width:145.9pt;border:none;border-top:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.95pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:8.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-top:.05pt;
  mso-height-rule:exactly&#39;&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
  style=&#39;font-size:8.0pt&#39;&gt;leaving office, friday at &lt;/span&gt;&lt;/span&gt;&lt;span
  class=75pt0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=82 valign=top style=&#39;width:61.45pt;border:none;border-top:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.95pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:7.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=75pt0&gt;&lt;span
  lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=92 valign=top style=&#39;width:69.35pt;border:none;border-top:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.95pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:8.0pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;30&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=53 valign=top style=&#39;width:40.1pt;border:none;border-top:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.95pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=right style=&#39;margin-right:2.0pt;text-align:right;
  text-indent:0cm;line-height:8.0pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;30&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:1;height:13.45pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=195 valign=top style=&#39;width:145.9pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.45pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:8.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-top:.05pt;
  mso-height-rule:exactly&#39;&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
  style=&#39;font-size:8.0pt&#39;&gt;reach car, raining&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=82 valign=top style=&#39;width:61.45pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.45pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:8.0pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=92 valign=top style=&#39;width:69.35pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.45pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:8.0pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;35&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=53 valign=top style=&#39;width:40.1pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.45pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=right style=&#39;margin-right:2.0pt;text-align:right;
  text-indent:0cm;line-height:8.0pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;40&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:2;height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=195 valign=top style=&#39;width:145.9pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:8.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-top:.05pt;
  mso-height-rule:exactly&#39;&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
  style=&#39;font-size:8.0pt&#39;&gt;exiting highway&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=82 valign=top style=&#39;width:61.45pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:7.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=75pt0&gt;&lt;span
  lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;20&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=92 valign=top style=&#39;width:69.35pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:8.0pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;15&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=53 valign=top style=&#39;width:40.1pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=right style=&#39;margin-right:2.0pt;text-align:right;
  text-indent:0cm;line-height:8.0pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;35&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:3;height:12.95pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=195 valign=top style=&#39;width:145.9pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.95pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:8.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-top:.05pt;
  mso-height-rule:exactly&#39;&gt;&lt;span class=75pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
  7.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
  style=&#39;font-size:8.0pt&#39;&gt;ndary road, behind truck&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=82 valign=top style=&#39;width:61.45pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.95pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:8.0pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;30&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=92 valign=top style=&#39;width:69.35pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.95pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:7.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=75pt0&gt;&lt;span
  lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=53 valign=top style=&#39;width:40.1pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.95pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=right style=&#39;margin-right:2.0pt;text-align:right;
  text-indent:0cm;line-height:8.0pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;40&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:4;height:14.15pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=195 valign=top style=&#39;width:145.9pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:14.15pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:8.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-top:.05pt;
  mso-height-rule:exactly&#39;&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
  style=&#39;font-size:8.0pt&#39;&gt;entering home street&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=82 valign=top style=&#39;width:61.45pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:14.15pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:8.0pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;40&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=92 valign=top style=&#39;width:69.35pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:14.15pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:8.0pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;3&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=53 valign=top style=&#39;width:40.1pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:14.15pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=right style=&#39;margin-right:2.0pt;text-align:right;
  text-indent:0cm;line-height:8.0pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;43&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:5;mso-yfti-lastrow:yes;height:11.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;td width=195 valign=top style=&#39;width:145.9pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:11.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:8.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-top:.05pt;
  mso-height-rule:exactly&#39;&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
  style=&#39;font-size:8.0pt&#39;&gt;arrive home&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=82 valign=top style=&#39;width:61.45pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:11.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:8.0pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;43&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=92 valign=top style=&#39;width:69.35pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:11.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:7.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=75pt0&gt;&lt;span
  lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=53 valign=top style=&#39;width:40.1pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:11.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=right style=&#39;margin-right:2.0pt;text-align:right;
  text-indent:0cm;line-height:8.0pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:316.8pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;43&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:4.6pt;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;The rewards in
this example are the elapsed times on each leg of the journey.&lt;a
style=&#39;mso-footnote-id:ftn10&#39; href=&#34;#_ftn10&#34; name=&#34;_ftnref10&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=213&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[10]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;
We are not discounting (y = &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batanga&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;), and thus the return for each state is the actual time to go from
that state. The value of each state is the &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;expected&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;time to go. The second column of numbers gives the current estimated
value for each state encountered.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=right style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:
0cm;margin-left:0cm;margin-bottom:.0001pt;text-align:right;line-height:13.7pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;A simple way to view the operation of Monte Carlo methods is to plot
the predicted total time (the last column) over the sequence, as in Figure 6.1
(left). The arrows&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;show the changes in predictions
recommended by the constant-a MC method (6.1), for a = 1. These are exactly the
errors between the estimated value (predicted time to go) in each state and the
actual return (actual time to go). For example, when you exited the highway you
thought it would take only 15 minutes more to get home, but in fact it took 23
minutes. Equation 6.1 applies at this point and determines an increment in the
estimate of time to go after exiting the highway. The error, Gt \A1\AA V(St), at
this time is eight minutes. Suppose the step-size parameter, a, is &lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;/&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. Then the predicted time to go after exiting the highway would be
revised upward by four minutes as a result of this experience. This is probably
too large a change in this case; the truck was probably just an unlucky break.
In any event, the change can only be made off-line, that is, after you have
reached home. Only at this point do you know any of the actual returns.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Is it necessary to wait until
the final outcome is known before learning can begin? Suppose on another day
you again estimate when leaving your office that it will take 30 minutes to
drive home, but then you become stuck in a massive traffic jam. Twenty-five
minutes after leaving the office you are still bumper-to-bumper on the highway.
You now estimate that it will take another 25 minutes to get home, for a total
of 50 minutes. As you wait in traffic, you already know that your initial
estimate of 30 minutes was too optimistic. Must you wait until you get home
before increasing your estimate for the initial state? According to the Monte
Carlo approach you must, because you don\A1\AFt yet know the true return.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;According to a TD approach, on
the other hand, you would learn immediately, shifting your initial estimate
from 30 minutes toward 50. In fact, each estimate would be shifted toward the
estimate that immediately follows it. Returning to our first day of driving,
Figure 6.1 (right) shows the changes in the predictions recommended by the TD
rule (6.2) (these are the changes made by the rule if a = 1). Each error is
proportional to the change over time of the prediction, that is, to the &lt;span
class=aff7&gt;temporal differences&lt;/span&gt; in predictions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 399.6pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Besides giving you something to do
while waiting in traffic, there are several com&amp;shy;putational reasons why it is advantageous
to learn based on your current predictions rather than waiting until
termination when you know the actual return. We briefly discuss some of these
next.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l37 level1 lfo23;
tab-stops:36.5pt;background:transparent&#39;&gt;&lt;a name=bookmark86&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Advantages of TD Prediction
Methods&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;TD methods learn their estimates in
part on the basis of other estimates. They learn a guess from a guess\A1\AAthey &lt;span
class=aff7&gt;bootstrap.&lt;/span&gt; Is this a good thing to do? What advantages do TD
methods have over Monte Carlo and DP methods? Developing and answering such
questions will take the rest of this book and more. In this section we briefly
anticipate some of the answers.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Obviously, TD methods have an
advantage over DP methods in that they do not require a model of the
environment, of its reward and next-state probability distributions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;The next most obvious advantage of TD methods over Monte Carlo
methods is that they are naturally implemented in an on-line, fully incremental
fashion. With Monte Carlo methods one must wait until the end of an episode,
because only then is the return known, whereas with TD methods one need wait
only one time step. Surprisingly often this turns out to be a critical
consideration. Some applications have very long episodes, so that delaying all
learning until an episode\A1\AFs end is too slow. Other applications are continuing
tasks and have no episodes at all. Finally, as we noted in the previous
chapter, some Monte Carlo methods must ignore or discount episodes on which
experimental actions are taken, which can greatly slow learning. TD methods are
much less susceptible to these problems because they learn from each transition
regardless of what subsequent actions are taken.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;But are TD methods sound? Certainly it is convenient to learn one
guess from the next, without waiting for an actual outcome, but can we still
guarantee convergence to the correct answer? Happily, the answer is yes. For
any fixed policy n, TD(0) has been proved to converge to Vn, in the mean for a
constant step-size parameter if it is sufficiently small, and with probability &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batanga&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt; if the step-size parameter decreases according to
the usual stochastic approximation conditions (2.7). Most convergence proofs
apply only to the table-based case of the algorithm presented above (&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batanga&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batanga&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;), but some also apply to the case of general linear function
approximation. These results are discussed in a more general setting in Chapter
9.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.0pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;If both TD and
Monte Carlo methods converge asymptotically to the correct pre&amp;shy;dictions, then a
natural next question is \A1\B0Which gets there first?\A1\B1 In other words, which method
learns faster? Which makes the more efficient use of limited data? At the
current time this is an open question in the sense that no one has been able to
prove mathematically that one method converges faster than the other. In fact,
it is not even clear what is the most appropriate formal way to phrase this
question! In practice, however, TD methods have usually been found to converge
faster than constant-a MC methods on stochastic tasks, as illustrated in
Example 6.2.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.0pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 398.9pt;background:transparent&#39;&gt;&lt;span class=21ArialUnicodeMS&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Exercise 6.2 &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;This is an exercise to help develop your intuition about why TD
methods are often more efficient than Monte Carlo methods. Consider the driving
home example and how it is addressed by TD and Monte Carlo methods. Can you
imagine a scenario in which a TD update would be better on average than a Monte
Carlo update? Give an example scenario\A1\AAa description of past experience and a
current state\A1\AAin which you would expect the TD update to be better. Here\A1\AFs a
hint: Suppose you have lots of experience driving home from work. Then you move
to a new building and a new parking lot (but you still enter the highway at the
same place). Now you are starting to learn predictions for the new building.
Can you see why TD updates are likely to be much better, at least initially, in
this case? Might the same sort of thing happen in the original task?&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:right 398.9pt;background:transparent&#39;&gt;&lt;span
class=21ArialUnicodeMS&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Exercise 6.3 &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;From Figure 6.2 (left) it appears that the first
episode results in a change in only V(&lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;). What does this tell you about what happened on
the first episode? Why was only the estimate for this one state changed? By
exactly how much was it changed?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:42.55pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;Example 6.2: Random Walk &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;In this example we empirically compare the prediction abilities of
TD(0) and constant-a MC applied to the small Markov reward process shown in the
upper part of the figure below. All episodes start in the center state, &lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;C&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, and
proceed either left or right by one state on each step, with equal probability.
This behavior can be thought of as due to the combined effect of a fixed policy
and an environment\A1\AFs state-transition probabilities, but we do not care which;
we are concerned only with predicting returns however they are generated.
Episodes terminate either on the extreme left or the extreme right. When an
episode terminates on the right, a reward of +1 occurs; all other rewards are
zero. For example, a typical epsiode might consist of the following
state-and-reward sequence: &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;C&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, 0, &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, 0, &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;C&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, 0, &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;D&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, 0, &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;E&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. Because this task is undiscounted, the true value of each state is
the probability of terminating on the right if starting from that state. Thus,
the true value of the center state is v^(&lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span
lang=EN-US&gt;C&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) = 0.5. The true values of all the
states, &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;through &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;E&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, are 1, |, |, |, and |. The left part of Figure 6.2 shows the
values learned by TD(0) approaching the true values as more episodes are
experienced. Averaging over many episode sequences, the right part of the
figure shows the average error in the predictions found by TD(0) and constant-a
MC, for a variety of values of a, as a function of number of episodes. In all
cases the approximate value function was initialized to the intermediate value
V(s) = 0.5, for all s. The TD method was consistently better than the MC method
on this task.&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:16.2pt;
margin-left:181.0pt;line-height:9.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_606&#34; o:spid=&#34;_x0000_s1497&#34; type=&#34;#_x0000_t75&#34;
 alt=&#34;image43&#34; style=&#39;position:absolute;left:0;text-align:left;margin-left:9.05pt;
 margin-top:27.35pt;width:156.5pt;height:130.1pt;z-index:251754282;
 visibility:visible;mso-wrap-style:square;mso-width-percent:0;
 mso-height-percent:0;mso-wrap-distance-left:5pt;mso-wrap-distance-top:0;
 mso-wrap-distance-right:5pt;mso-wrap-distance-bottom:0;
 mso-position-horizontal:absolute;mso-position-horizontal-relative:margin;
 mso-position-vertical:absolute;mso-position-vertical-relative:text;
 mso-width-percent:0;mso-height-percent:0;mso-width-relative:page;
 mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image044.jpg&#34;
  o:title=&#34;image43&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;start&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:127.45pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:right;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=170 align=right&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=170 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=right style=&#39;text-align:right;mso-element:frame;
  mso-element-frame-height:127.45pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:right;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_17&#34; o:spid=&#34;_x0000_i1106&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image44&#34;
   style=&#39;width:177.75pt;height:128.25pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image045.jpg&#34;
    o:title=&#34;image44&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:3.25pt;margin-right:0cm;margin-bottom:14.25pt;
margin-left:86.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
9.0pt;mso-line-height-rule:exactly;tab-stops:right 306.3pt 306.35pt 350.7pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;State&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Walks&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;/&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;Episodes&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:11.4pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.75pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Figure 6.2: Results with the 5-state random walk. Above: The small
Markov reward process generating the episodes. Left: Results from a single run
after various numbers of episodes. The estimate after 100 episodes is about as
close as they ever get to the true values; with a constant step-size parameter
(a = &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0.1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; in this example), the values fluctuate indefinitely in response to
the outcomes of the most recent episodes. Right: Learning curves for TD(0) and
constant-a MC methods, for various values of a. The performance measure shown
is the root mean-squared (RMS) error between the value function learned and the
true value function, averaged over the five states. These data are averages
over 100 different sequences of episodes.&lt;/span&gt;&lt;/p&gt;

&lt;p class=503 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:12.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;\A1\F6&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 403.1pt;
background:transparent&#39;&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;Exercise
6.4 &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;The specific results shown in Figure 6.2
(right) are dependent on the value of the step-size parameter, a. Do you think
the conclusions about which algorithm is better would be affected if a wider
range of a values were used? Is there a different, fixed value of a at which
either algorithm would have performed significantly better than shown? Why or
why not?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 403.1pt;
background:transparent&#39;&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;*&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;Exercise 6.5 &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;In Figure 6.2 (right)
the RMS error of the TD method seems to go down and then up again, particularly
at high a\A1\AFs. What could have caused this? Do you think this always occurs, or
might it be a function of how the approximate value function was initialized?&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:3.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;Exercise 6.6 &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Above we stated that the true values for the random walk task are &lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\CA\EE&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, and &lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\CA\EE&lt;/span&gt;&lt;/span&gt;&lt;span
class=1pt3&gt;&lt;span lang=EN-US&gt;,for&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; states &lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;through
&lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;E&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. Describe at least two different ways that these could have been
computed. Which would you guess we actually used? Why?&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:21.35pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:3.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l37 level1 lfo23;
tab-stops:39.95pt;background:transparent&#39;&gt;&lt;a name=bookmark87&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Optimality of TD(0)&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Suppose there is available only a finite amount of experience, say
10 episodes or 100 time steps. In this case, a common approach with incremental
learning methods is to present the experience repeatedly until the method
converges upon an answer. Given an approximate value function, V, the
increments specified by (6.1) or (6.2) are computed for every time step t at
which a nonterminal state is visited, but the value function is changed only
once, by the sum of all the increments. Then all the available experience is
processed again with the new value function to produce a new overall increment,
and so on, until the value function converges. We call this &lt;span class=aff7&gt;batch
updating&lt;/span&gt; because updates are made only after processing each complete &lt;span
class=aff7&gt;batch &lt;/span&gt;of training data.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Under batch updating, TD(0) converges deterministically to a single
answer in&amp;shy;dependent of the step-size parameter, a, as long as a is chosen to be
sufficiently small. The constant-a MC method also converges deterministically
under the same conditions, but to a different answer. Understanding these two
answers will help us understand the difference between the two methods. Under
normal updating the methods do not move all the way to their respective batch
answers, but in some sense they take steps in these directions. Before trying
to understand the two answers in general, for all possible tasks, we first look
at a few examples.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:3.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;Example 6.3: Random
walk under batch updating &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Batch-updating
versions of TD(0) and constant-a MC were applied as follows to the random walk
predic&amp;shy;tion example (Example &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;). After each new episode, all episodes seen so far were treated as
a batch. They were repeatedly presented to the algorithm, either TD(0) or
constant-a MC, with a sufficiently small that the value function converged. The
re&amp;shy;sulting value function was then compared with v^, and the average root
mean-squared error across the five states (and across &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;100&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;
independent repetitions of the whole ex&amp;shy;periment) was plotted to obtain the
learning curves shown in Figure 6.3. Note that the batch TD method was
consistently better than the batch Monte Carlo method.&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection138&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:180.0pt;mso-element-frame-height:
139.9pt;mso-element-frame-hspace:81.1pt;mso-element-wrap:no-wrap-beside;
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mso-element-left:276.8pt;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=348 height=187&gt;
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  &lt;td valign=top align=left height=187 style=&#39;padding-top:0cm;padding-right:
  81.1pt;padding-bottom:0cm;padding-left:81.1pt&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:180.0pt;
  mso-element-frame-height:139.9pt;mso-element-frame-hspace:81.1pt;mso-element-wrap:
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  column;mso-element-left:276.8pt;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_18&#34; o:spid=&#34;_x0000_i1105&#34;
   type=&#34;#_x0000_t75&#34; alt=&#34;image45&#34; style=&#39;width:180pt;height:140.25pt;
   visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image046.jpg&#34;
    o:title=&#34;image45&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:50.15pt;mso-element-frame-height:
36.95pt;mso-element-frame-hspace:81.1pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:214.65pt;mso-element-top:45.0pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=175 height=49&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=49 style=&#39;padding-top:0cm;padding-right:
  81.1pt;padding-bottom:0cm;padding-left:81.1pt&#39;&gt;
  &lt;p class=6c style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:0cm;
  margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
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  mso-element-left:214.65pt;mso-element-top:45.0pt&#39;&gt;&lt;span class=61&gt;&lt;span
  lang=EN-US&gt;RMS error, averaged over states&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:79.9pt;mso-element-frame-height:
9.6pt;mso-element-frame-hspace:81.1pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:338.5pt;mso-element-top:147.65pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=215 height=13&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=13 style=&#39;padding-top:0cm;padding-right:
  81.1pt;padding-bottom:0cm;padding-left:81.1pt&#39;&gt;
  &lt;p class=6c style=&#39;line-height:8.5pt;mso-line-height-rule:exactly;background:
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  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:338.5pt;mso-element-top:147.65pt&#39;&gt;&lt;span class=61&gt;&lt;span
  lang=EN-US&gt;Walks / Episodes&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:399.1pt;mso-element-frame-height:
24.0pt;mso-element-frame-hspace:81.1pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:138.55pt;mso-element-top:174.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=640 height=32&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=32 style=&#39;padding-top:0cm;padding-right:
  81.1pt;padding-bottom:0cm;padding-left:81.1pt&#39;&gt;
  &lt;p class=afffff8 style=&#39;line-height:12.0pt;mso-line-height-rule:exactly;
  background:transparent;mso-element:frame;mso-element-frame-width:399.1pt;
  mso-element-frame-height:24.0pt;mso-element-frame-hspace:81.1pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:138.55pt;mso-element-top:174.05pt&#39;&gt;&lt;span lang=EN-US&gt;Figure
  6.3: Performance of TD(0) and constant-a MC under batch training on the
  random walk task.&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:39.65pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Under batch training,
constant-a MC converges to values, V(s), that are sample averages of the actual
returns experienced after visiting each state s. These are optimal estimates in
the sense that they minimize the mean-squared error from the actual returns in
the training set. In this sense it is surprising that the batch TD method was
able to perform better according to the root mean-squared error measure shown
in Figure 6.3. How is it that batch TD was able to perform better than this
optimal method? The answer is that the Monte Carlo method is optimal only in a
limited way, and that TD is optimal in a way that is more relevant to
predicting returns. But first let\A1\AFs develop our intuitions about different
kinds of optimality through another example. Consider Example 6.4, on the next
page.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 6.4 illustrates a general difference
between the estimates found by batch TD(0) and batch Monte Carlo methods. Batch
Monte Carlo methods always find the estimates that minimize mean-squared error
on the training set, whereas batch TD(0) always finds the estimates that would
be exactly correct for the maximum-likelihood model of the Markov process. In
general, the &lt;span class=aff7&gt;maximum-likelihood estimate&lt;/span&gt; of a parameter
is the parameter value whose probability of generating the data is greatest. In
this case, the maximum-likelihood estimate is the model of the Markov process
formed in the obvious way from the observed episodes: the estimated transition
probability from &lt;span class=aff7&gt;i&lt;/span&gt; to &lt;span class=aff7&gt;j&lt;/span&gt; is the
fraction of observed transitions from &lt;span class=aff7&gt;i&lt;/span&gt; that went to j,
and the associated expected reward is the average of the rewards observed on
those transitions. Given this model, we can compute the estimate of the value
function that would be exactly correct if the model were exactly correct. This
is called the &lt;span class=aff7&gt;certainty-equivalence estimate&lt;/span&gt; because it
is equivalent to assuming that the estimate of the underlying process was known
with certainty rather than being approximated. In general, batch TD(0)
converges to the certainty-equivalence estimate.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;This helps explain why TD methods converge more
quickly than Monte Carlo methods. In batch form, TD(0) is faster than Monte
Carlo methods because it com-&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.85pt;
margin-left:4.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:black&#39;&gt;&lt;span class=af7&gt;&lt;span lang=EN-US&gt;Example 6.4 You are the
Predictor&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:15.0pt;margin-bottom:0cm;
margin-left:4.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.7pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Place
yourself now in the role of the predictor of returns for an unknown Markov
reward process. Suppose you observe the following eight episodes:&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
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     &lt;sub&gt;B&lt;/sub&gt;&lt;sup&gt;,&lt;/sup&gt; &lt;sub&gt;B&lt;/sub&gt;&lt;sup&gt;,&lt;/sup&gt; &lt;sub&gt;B&lt;/sub&gt;&lt;sup&gt;,&lt;/sup&gt;
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&lt;p class=MsoNormal style=&#39;line-height:32.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection140&gt;

&lt;p class=afffff6 style=&#39;margin-right:2.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;This means that the first episode
started in state &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, transitioned to &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span
lang=EN-US&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;with a reward of 0, and then
terminated from &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;with a reward of 0. The other seven episodes were even shorter,
starting from &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;and terminating immediately. Given this batch of data, what would
you say are the optimal predictions, the best values for the estimates V(&lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) and V(&lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)?
Everyone would probably agree that the optimal value for V(&lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) is |,
because six out of the eight times in state &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span
lang=EN-US&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;the process terminated immediately
with a return of 1, and the other two times in &lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;the
process terminated immediately with a return of 0.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:2.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_601&#34; o:spid=&#34;_x0000_s1494&#34;
 type=&#34;#_x0000_t75&#34; alt=&#34;image46&#34; style=&#39;position:absolute;left:0;text-align:left;
 margin-left:264.05pt;margin-top:13.7pt;width:108.95pt;height:73.45pt;
 z-index:251755306;visibility:visible;mso-wrap-style:square;
 mso-width-percent:0;mso-height-percent:0;mso-wrap-distance-left:5pt;
 mso-wrap-distance-top:0;mso-wrap-distance-right:5pt;
 mso-wrap-distance-bottom:0;mso-position-horizontal:absolute;
 mso-position-horizontal-relative:margin;mso-position-vertical:absolute;
 mso-position-vertical-relative:text;mso-width-percent:0;mso-height-percent:0;
 mso-width-relative:page;mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image048.jpg&#34;
  o:title=&#34;image46&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;But what is the optimal value for the estimate V(&lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) given
this data? Here there are two reasonable answers. One is to observe that 100%
of the times the process was in state &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span
lang=EN-US&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;it traversed immediately to &lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(with a
reward of 0); and since we have already decided that &lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;has
value |, therefore &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;must have value 4 as well. One way of viewing this answer is that it
is based on first modeling the Markov process,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:2.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;in this case as shown to the right,
and then computing the correct estimates given the model, which indeed in this
case gives V(&lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) = 4. This is also the answer that batch TD(0) gives.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:2.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:right 368.4pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The
other reasonable answer is simply to observe that we have seen &lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;once
and the return that followed it was 0; we therefore estimate V(&lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) as 0.
This is the answer that batch Monte Carlo methods give. Notice that it is also
the answer that gives minimum squared error on the training data. In fact, it gives
zero error on the data. But still we expect the first answer to be better. If
the process is Markov, we expect that the first answer will produce lower error
on &lt;span class=aff7&gt;future&lt;/span&gt; data, even though the Monte Carlo answer is
better on the existing data.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;br
clear=all style=&#39;page-break-before:always&#39;&gt;
putes the true certainty-equivalence estimate. This explains the advantage of
TD(0) shown in the batch results on the random walk task (Figure 6.3). The
relationship to the certainty-equivalence estimate may also explain in part the
speed advantage of nonbatch TD(0) (e.g., Figure 6.2, right). Although the
nonbatch methods do not achieve either the certainty-equivalence or the minimum
squared-error estimates, they can be understood as moving roughly in these
directions. Nonbatch TD(0) may be faster than constant-a MC because it is
moving toward a better estimate, even though it is not getting all the way
there. At the current time nothing more definite can be said about the relative
efficiency of on-line TD and Monte Carlo methods.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Finally, it is worth noting that although the certainty-equivalence
estimate is in some sense an optimal solution, it is almost never feasible to
compute it directly. If &lt;span class=aff7&gt;N&lt;/span&gt; is the number of states, then
just forming the maximum-likelihood estimate of the process may require N&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; memory, and computing the corresponding value function requires on
the order of N&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;3&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; computational steps if done
conventionally. In these terms it is indeed striking that TD methods can
approximate the same solution using memory no more than N and repeated
computations over the training set. On tasks with large state spaces, TD
methods may be the only feasible way of approximating the certainty-equivalence
solution.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:33.35pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 404.3pt;
background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;sK&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;Exercise
6.7 Design an off-policy version of the TD(0) update that can be used with
arbitrary target policy n and covering behavior policy b, using at each step t
the importance sampling ratio &lt;span class=-2pt0&gt;pt&lt;/span&gt;&lt;/span&gt;&lt;span
class=-2pt0&gt;\A3\BA&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; (5.3).&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.8pt;
margin-left:3.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l37 level1 lfo23;
tab-stops:39.95pt;background:transparent&#39;&gt;&lt;a name=bookmark88&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Sarsa: On-policy TD Control&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:3.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;We turn now to the use of TD prediction methods
for the control problem. As usual, we follow the pattern of generalized policy
iteration (GPI), only this time using TD methods for the evaluation or
prediction part. As with Monte Carlo methods, we face the need to trade off exploration
and exploitation, and again approaches fall into two main classes: on-policy
and off-policy. In this section we present an on-policy TD control method.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.3pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The first step is to learn an action-value function rather than a
state-value function. In particular, for an on-policy method we must estimate
(s, a) for the current behavior policy n and for all states s and actions a.
This can be done using essentially the same TD method described above for
learning Vn. Recall that an episode consists of an alternating sequence of
states and state-action pairs:&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:19.7pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=26 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=26 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:19.7pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_19&#34; o:spid=&#34;_x0000_i1104&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image47&#34;
   style=&#39;width:234pt;height:20.25pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image049.png&#34;
    o:title=&#34;image47&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:3.15pt;margin-right:1.0pt;margin-bottom:
18.15pt;margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In the previous section we considered transitions
from state to state and learned the values of states. Now we consider
transitions from state-action pair to state-action pair, and learn the values
of state-action pairs. Formally these cases are identical: they are both Markov
chains with a reward process. The theorems assuring the convergence of state
values under TD(0) also apply to the corresponding algorithm&lt;br clear=all
style=&#39;page-break-before:always&#39;&gt;
for action values:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.05pt;
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&lt;/v:shape&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;Q(S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t, &lt;sup&gt;A&lt;/sup&gt;t&lt;sup&gt;)&lt;span
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R&lt;/sup&gt;t+i + &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
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&lt;sup&gt;A&lt;/sup&gt;t&lt;sup&gt;)&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

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    line-height:7.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=49Exact&gt;&lt;span lang=EN-US style=&#39;font-size:7.0pt;letter-spacing:0pt&#39;&gt;Sarsa&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;This update is done after every transition from a
nonterminal state St. If St+i is terminal, then Q(St+i, At+i) is defined as
zero. This rule uses every element of the quintuple of events, (St, At, Rt+i,
St+i, At+i), that make up a transition from one state-action pair to the next.
This quintuple gives rise to the name &lt;span class=aff7&gt;Sarsa&lt;/span&gt; for the
algorithm. The backup diagram for Sarsa is as shown to the right.&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection141&gt;

&lt;p class=MsoNormal style=&#39;line-height:6.05pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection142&gt;

&lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;tab-stops:right 400.65pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Exercise &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;6.8&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; Show that an action-value version of
(&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) holds for the action-value form of the TD error &lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
class=1pt3&gt;&lt;span lang=EN-US&gt;=Rt+i&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + YQ(St+i,
At+i \A1\AA Q(St, At), again assuming that the values don\A1\AFt change from step to
step.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.15pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
9.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;It is straightforward to design an on-policy control algorithm based
on the Sarsa prediction method. As in all on-policy methods, we continually
estimate for the behavior policy n, and at the same time change n toward
greediness with respect to qn. The general form of the Sarsa control algorithm
is given in the box below.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.15pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
9.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span
class=af7&gt;&lt;span lang=EN-US&gt;Sarsa (on-policy TD control) for estimating Q ^ q*&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 align=left style=&#39;margin-top:0cm;margin-right:68.0pt;margin-bottom:
0cm;margin-left:11.0pt;margin-bottom:.0001pt;text-align:left;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
Q(s, a), Vs G S, a G A(s), arbitrarily, and Q(&lt;/span&gt;&lt;span
class=49CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;terminal-state,&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &amp;#8226;) = 0 Repeat (for each episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 align=left style=&#39;margin-left:22.0pt;text-align:left;line-height:
11.75pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
S&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 align=left style=&#39;margin-left:22.0pt;text-align:left;line-height:
11.75pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Choose
A from S using policy derived from Q (e.g., e-greedy)&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 align=left style=&#39;margin-left:22.0pt;text-align:left;line-height:
11.75pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat
(for each step of episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 align=left style=&#39;margin-left:36.0pt;text-align:left;line-height:
11.75pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Take
action A, observe R, S&lt;sup&gt;7&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 align=left style=&#39;margin-left:36.0pt;text-align:left;line-height:
11.75pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Choose
A&lt;sup&gt;7&lt;/sup&gt; from S&lt;sup&gt;7&lt;/sup&gt; using policy derived from Q (e.g., e-greedy)&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 align=left style=&#39;margin-left:36.0pt;text-align:left;line-height:
11.75pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Q(S,
A) ^ Q(S,A)+ a[R + &lt;sub&gt;7&lt;/sub&gt;Q(S&lt;sup&gt;7&lt;/sup&gt;, A&lt;sup&gt;7&lt;/sup&gt;) \A1\AA Q(S, A)]&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 align=right style=&#39;margin-top:0cm;margin-right:295.0pt;margin-bottom:
19.65pt;margin-left:22.0pt;text-align:right;line-height:11.75pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;S ^ S&lt;sup&gt;7&lt;/sup&gt;; A ^ A&lt;sup&gt;7&lt;/sup&gt;;
until S is terminal&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.0pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
9.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The convergence properties of the Sarsa algorithm depend on the
nature of the policy\A1\AFs dependence on Q. For example, one could use e-greedy or
e-soft policies. According to Satinder Singh (personal communication), Sarsa
converges with prob&amp;shy;ability &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; to an optimal policy
and action-value function as long as all state-action pairs are visited an
infinite number of times and the policy converges in the limit to the greedy
policy (which can be arranged, for example, with e-greedy policies by setting e
= &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;/t), but this result has not yet been published in the literature.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 6.5: Windy Gridworld Shown inset in
Figure 6.4 is a standard grid- world, with start and goal states, but with one
difference: there is a crosswind up&amp;shy;ward through the middle of the grid. The
actions are the standard four\A1\AAup, down, right, and left\A1\AAbut in the middle
region the resultant next states are shifted up&amp;shy;ward by a \A1\B0wind,\A1\B1 the strength
of which varies from column to column. The strength of the wind is given below
each column, in number of cells shifted upward. For ex&amp;shy;ample, if you are one
cell to the right of the goal, then the action &lt;span class=1pt3&gt;left&lt;/span&gt;
takes you to&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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    exactly;background:transparent&#39;&gt;&lt;span class=210ptExact&gt;&lt;span lang=EN-US
    style=&#39;font-size:7.5pt&#39;&gt;Figure 6.4: altered by a also shown.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;Results of Sarsa applied to a
gridworld (shown inset) in which movement is location-dependent, upward \A1\B0wind.\A1\B1
A trajectory under the optimal policy is&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.2pt;
margin-left:0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;the cell just above the goal. Let
us treat this as an undiscounted episodic task, with constant rewards of &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batanga&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;\A1\AA1&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt; until the goal state is reached.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:right 399.25pt;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;The graph in Figure 6.4 shows the results of applying e-greedy Sarsa
to this task, with &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;= 0.1,
a = 0.5, and the initial values Q(s, a) = 0 for all s, a. The increasing slope
of the graph shows that the goal is reached more and more quickly over time. By
8000 time steps, the greedy policy was long since optimal (a trajectory from it
is shown inset); continued e-greedy exploration kept the average episode length
at about 17 steps, two more than the minimum of 15. Note that Monte Carlo
methods cannot easily be used on this task because termination is not
guaranteed for all policies. If a policy was ever found that caused the agent
to stay in the same state, then the next episode would never end. Step-by-step
learning methods such as Sarsa do not have this problem because they quickly
learn &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;during the episode&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;that
such policies are poor, and switch to something else.&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 399.25pt;background:transparent&#39;&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;Exercise 6.9: &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Windy Gridworld with &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batangb&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;King&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batangb&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;\A3\AC&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; Moves&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;Re-solve the windy gridworld task assuming eight
possible actions, including the diagonal moves, rather than the usual four. How
much better can you do with the extra actions? Can you do even better by
including a ninth action that causes no movement at all other than that caused
by the wind?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;Exercise 6.10: &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Stochastic Wind&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;Re-solve the windy gridworld task with King\A1\AFs moves,
assuming that the effect of the wind, if there is any, is stochastic, sometimes
varying by 1 from the mean values given for each column. That is, a third of
the time you move exactly according to these values, as in the previous
exercise, but also a third of the time you move one cell above that, and
another third of the time you move one cell below that. For example, if you are
one cell to the right of the goal and you move &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batangc&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;left&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;, then one-third of the time you move one cell above
the goal, one-third of the time you move two cells above the goal, and
one-third of the time&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:21.8pt;
margin-left:2.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
right 397.7pt;background:transparent&#39;&gt;&lt;!--[if supportFields]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-element:field-begin&#39;&gt;&lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;TOC \o &amp;quot;1-5&amp;quot; \h \z &lt;span
style=&#39;mso-element:field-separator&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;span lang=EN-US&gt;you
move to the goal.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.15pt;
margin-left:2.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l37 level1 lfo23;tab-stops:38.95pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Q-learning: Off-policy TD
Control&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:2.0pt;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;One of the early breakthroughs in reinforcement
learning was the development of an off-policy TD control algorithm known as &lt;span
class=affd&gt;Q-learning&lt;/span&gt; (Watkins, 1989), defined by&lt;/span&gt;&lt;/p&gt;

&lt;p class=5d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:24.0pt;margin-bottom:.0001pt;line-height:9.5pt;mso-line-height-rule:
exactly;tab-stops:right 397.7pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Q&lt;/span&gt;&lt;span
class=5Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;St, At&lt;/span&gt;&lt;span class=5Batang&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;^ Q&lt;/span&gt;&lt;span class=5Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;St, At&lt;/span&gt;&lt;span
class=5Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;) + &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;a Rt&lt;/span&gt;&lt;span class=5Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span class=5Batang&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span class=5Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:
7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=5Batang&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;max&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Q&lt;/span&gt;&lt;span class=5Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;St&lt;/span&gt;&lt;span
class=5Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,a&lt;/span&gt;&lt;span class=5Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;)
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;\A1\AA Q&lt;/span&gt;&lt;span class=5Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;St, At&lt;/span&gt;&lt;span
class=5Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&amp;#8226;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=5Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=5Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=5Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span
class=5Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
class=5Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=5d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.55pt;
margin-left:156.0pt;line-height:8.0pt;mso-line-height-rule:exactly;tab-stops:
right 214.1pt 331.7pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;a&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;.&lt;/span&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-end&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.55pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In this case, the learned action-value function, &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, directly approximates &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;^, the op&amp;shy;timal
action-value function, independent of the policy being followed. This dramat&amp;shy;ically
simplifies the analysis of the algorithm and enabled early convergence proofs.
The policy still has an effect in that it determines which state-action pairs
are visited and updated. However, all that is required for correct convergence
is that all pairs continue to be updated. As we observed in Chapter 5, this is
a minimal requirement in the sense that any method guaranteed to find optimal
behavior in the general case must require it. Under this assumption and a
variant of the usual stochastic approx&amp;shy;imation conditions on the sequence of
step-size parameters, &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;Q &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;has been shown to
converge with probability 1 to &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;^. The
Q-learning algorithm is shown in procedural form in the box below.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.75pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span
class=af7&gt;&lt;span lang=EN-US&gt;Q-learning (off-policy TD control) for estimating n
n&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUfe&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:
ZH-TW&#39;&gt;ľ&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:68.0pt;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
Q(s, a), Vs G S, a G A(s), arbitrarily, and &lt;span class=aff7&gt;Q&lt;/span&gt;(&lt;span
class=aff7&gt;terminal-state,&lt;/span&gt; \A1\F6) = 0 Repeat (for each episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:24.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.75pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize S&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:24.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.75pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat (for each step of episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:24.0pt;text-indent:12.0pt;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Choose A
from S using policy derived from Q (e.g., e-greedy)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:24.0pt;text-indent:12.0pt;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Take
action A, observe R, S&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:24.0pt;text-indent:12.0pt;line-height:11.75pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Q(S, A) ^
Q(S, A)+ a[R + &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;max&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sub&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;0&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; Q(S&lt;sup&gt;7&lt;/sup&gt;, a) \A1\AA Q(S, A)]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:91.0pt;margin-bottom:22.65pt;
margin-left:24.0pt;text-indent:12.0pt;line-height:11.75pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;S ^ S&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;until S is
terminal&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.0pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;What is the backup diagram for Q-learning? The rule (&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) updates a state-action pair, so the top node, the root of the
backup, must be a small, filled action node. The backup is also &lt;span
class=aff7&gt;from&lt;/span&gt; action nodes, maximizing over all those actions possible
in the next state. Thus the bottom nodes of the backup diagram should be all
these action nodes. Finally, remember that we indicate taking the maximum of
these \A1\B0next action\A1\B1 nodes with an arc across them (Figure 3.7-right). Can you
guess now what the diagram is? If so, please do make a guess before turning to
the answer in Figure &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;6.6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; on page 144.&lt;/span&gt;&lt;/p&gt;

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    &lt;td&gt;&lt;![endif]&gt;
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    &lt;p class=afffff8 style=&#39;background:transparent&#39;&gt;&lt;span class=Exact0&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;Figure 6.5: The
    cliff-walking task. The results are from a single run, but smoothed by
    averaging the reward sums from &lt;/span&gt;&lt;/span&gt;&lt;span class=0ptExact3&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
    class=Exact0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;
    successive episodes.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
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  &lt;![if !mso]&gt;
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   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=117 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;line-height:
    10.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=110ptExact&gt;&lt;span lang=EN-US style=&#39;font-size:10.0pt;letter-spacing:
    0pt&#39;&gt;Episodes&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Example &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;: Cliff Walking This gridworld example compares Sarsa and Q-
learning, highlighting the difference between on-policy (Sarsa) and off-policy
(Q- learning) methods. Consider the gridworld shown in the upper part of Figure
6.5. This is a standard undiscounted, episodic task, with start and goal
states, and the &lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection143&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.0pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;usual actions causing movement up, down, right, and left. Reward is
\A1\AA1 on all transitions except those into the region marked \A1\B0The Cliff.\A1\B1 Stepping
into this region incurs a reward of &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;\A1\AA100&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; and sends the agent
instantly back to the start.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 399.6pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The lower part of Figure 6.5 shows the
performance of the Sarsa and Q-learning methods with e-greedy action selection,
e = 0.1. After an initial transient, Q-learning learns values for the optimal
policy, that which travels right along the edge of the cliff. Unfortunately,
this results in its occasionally falling off the cliff because of the e-greedy
action selection. Sarsa, on the other hand, takes the action selection into
account and learns the longer but safer path through the upper part of the
grid. Although Q-learning actually learns the values of the optimal policy, its
on&amp;shy;line performance is worse than that of Sarsa, which learns the roundabout
policy. Of course, if e were gradually reduced, then both methods would
asymptotically converge to the optimal policy.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Exercise 6.11 Why is Q-learning considered an &lt;span class=aff7&gt;off-policy&lt;/span&gt;
control method? \A1\F5&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=530 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:41.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:96.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:23.3pt;mso-line-height-rule:exactly;
tab-stops:right 269.05pt 298.8pt;background:transparent&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_588&#34;
 o:spid=&#34;_x0000_s1483&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image51&#34; style=&#39;position:absolute;
 left:0;text-align:left;margin-left:100.8pt;margin-top:21.1pt;width:34.1pt;
 height:30.7pt;z-index:251766570;visibility:visible;mso-wrap-style:square;
 mso-width-percent:0;mso-height-percent:0;mso-wrap-distance-left:5pt;
 mso-wrap-distance-top:0;mso-wrap-distance-right:5pt;
 mso-wrap-distance-bottom:0;mso-position-horizontal:absolute;
 mso-position-horizontal-relative:margin;mso-position-vertical:absolute;
 mso-position-vertical-relative:margin;mso-width-percent:0;
 mso-height-percent:0;mso-width-relative:page;mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image053.png&#34;
  o:title=&#34;image51&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Q-learning&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Expected&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;Sarsa&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=center style=&#39;margin-top:0cm;margin-right:0cm;
margin-bottom:20.25pt;margin-left:1.0pt;text-align:center;text-indent:0cm;
line-height:23.3pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Figure &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;: The backup
diagrams for Q-learning and expected Sarsa.&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l37 level1 lfo23;
tab-stops:36.7pt;background:transparent&#39;&gt;&lt;a name=bookmark90&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Expected Sarsa&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Consider the learning algorithm that is just like Q-learning except
that instead of the maximum over next state-action pairs it uses the expected
value, taking into account how likely each action is under the current policy.
That is, consider the algorithm with the update rule&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=center style=&#39;margin-top:0cm;margin-right:0cm;
margin-bottom:12.35pt;margin-left:1.0pt;text-align:center;text-indent:0cm;
line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;Q(S&lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, &lt;sup&gt;A&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; Q&lt;sup&gt;(S&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &lt;sup&gt;A&lt;/sup&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; + &lt;sup&gt;a R&lt;/sup&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + &lt;sup&gt;YE[Q(S&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
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lang=EN-US&gt;, &lt;sup&gt;A&lt;/sup&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;| &lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;] &lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;Q(S&lt;/span&gt;&lt;/sup&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;, A&lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-right:1.0pt;text-align:right;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;Q(S&lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;,A&lt;/span&gt;&lt;/sup&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; + &lt;sup&gt;a R&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+i + &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;sup&gt;n(a&lt;/sup&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;|&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+i)&lt;sup&gt;Q(S&lt;/sup&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+i, &lt;sup&gt;a) &lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;\A1\AA&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Q&lt;sup&gt;(S&lt;/sup&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;,A&lt;/span&gt;&lt;/sup&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) &lt;sup&gt;, (6&lt;/sup&gt;.&lt;sup&gt;9)&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=center style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
7.55pt;margin-left:1.0pt;text-align:center;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;but that otherwise follows the schema of Q-learning. Given the next
state, S&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+i, this algorithm
moves &lt;span class=aff7&gt;deterministically&lt;/span&gt; in the same direction as Sarsa
moves &lt;span class=aff7&gt;in expecta&amp;shy;tion,&lt;/span&gt; and accordingly it is called &lt;span
class=aff7&gt;expected Sarsa.&lt;/span&gt; Its backup diagram is shown on the right in
Figure &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Expected Sarsa is more complex computationally than Sarsa but, in
return, it eliminates the variance due to the random selection of A&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+i. Given the same amount of experience we might expect it to
perform slightly better than Sarsa, and indeed it generally does. Figure 6.7
shows summary results on the cliff-walking task with Ex&amp;shy;pected Sarsa compared
to Sarsa and Q-learning. As an on-policy method, Expected Sarsa retains the
significant advantage of Sarsa over Q-learning on this problem. In addition,
Expected Sarsa shows a significant improvement over Sarsa over a wide range of
values for the step-size parameter a. In cliff walking the state transitions
are all deterministic and all randomness comes from the policy. In such cases,
Ex&amp;shy;pected Sarsa can safely set a = 1 without suffering any degradation of
asymptotic performance, whereas Sarsa can only perform well in the long run at
a small value of a, at which short-term performance is poor. In this and other
examples there is a consistent empirical advantage of Expected Sarsa over
Sarsa.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In these cliff walking results
we have taken Expected Sarsa to be an on-policy algorithm, but in general we
can use a policy different from the target policy n to generate behavior, in
which case Expected Sarsa becomes an off-policy algorithm. For example, suppose
n is the greedy policy while behavior is more exploratory; then Expected Sarsa
is exactly Q-learning. In this sense Expected Sarsa subsumes and generalizes
Q-learning while reliably improving over Sarsa. Except for the small additional
computational cost, Expected Sarsa may completely dominate both of the other
more-well-known TD control algorithms.&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l37 level1 lfo23;
tab-stops:36.7pt;background:transparent&#39;&gt;&lt;a name=bookmark91&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Maximization Bias and Double
Learning&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;All the control algorithms that we have discussed so far involve
maximization in the construction of their target policies. For example, in
Q-learning the target policy is the greedy policy given the current action
values, which is defined with a max, and in Sarsa the policy is often &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;-greedy, which also involves a maximization operation. In these
algorithms, a maximum over estimated values is used implicitly as an estimate
of the maximumvalue, which can lead to a significant positive bias. To see why,
consider a single state &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;where there are many
actions &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;a &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;whose true values, &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;s, a&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;), are all zero but &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;hose estimated values, &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;s,a&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;), are uncertain an&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;d &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;thus
distributed some above and some below zero. The maximum of the true values is
zero, but the maximum of the estimates is positive, a positive bias. We call
this &lt;span class=aff7&gt;maximization bias.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Example 6.7: Maximization Bias Example The smaHl MDP ehown inset in
Figure &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6.8&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; provides a simple example of how maximization bias can harm the
performa nce of TD control algorithm s. The MDP has two non-termin al states &lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.
Episodes always start in &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;with a choice between two actions, &lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;left &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;right&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.
The &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;right &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;net ion transitions immediately to the terminal state with a reward
and return of zero. The l&lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;ft action transitions to &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span
lang=EN-US&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, also with a reward of zero, from
which there are many possible actions all of which cause immediate termination
with a&lt;/span&gt;&lt;/p&gt;

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&lt;div class=WordSection144&gt;

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text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;reward drawn from a normal distribution with mean
&lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\AA0.1 &lt;/span&gt;&lt;span
lang=EN-US&gt;and variance &lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;1.0.
&lt;/span&gt;&lt;span lang=EN-US&gt;Thus, the expected return for any trajectory starting
with &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;left &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;is \A1\AA&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, and thus taking &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span
lang=EN-US&gt;left &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;in state &lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is
always a mistake. Nevertheless, our control methods may favor &lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;left &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;because
of maximization bias making &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span
lang=EN-US&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;appear to have a positive value.
Figure &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6.8 &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;shows that Q-learning with e-greedy action selection initially
learns to strongly favor the &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span
lang=EN-US&gt;left &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;action on this example. Even at
asymptote, Q-learning takes the &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span
lang=EN-US&gt;left &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;action about 5% more often than
is optimal at our parameter settings (e = 0.1, a = 0.1, and y = &lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;).&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:20.25pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection146&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:9.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Are there algorithms that
avoid maximization bias? To start, consider a bandit case in which we have
noisy estimates of the value of each of many actions, obtained as sample
averages of the rewards received on all the plays with each action. As we
discussed above, there will be a positive maximization bias if we use the
maximum of the estimates as an estimate of the maximum of the true values. One
way to view the problem is that it is due to using the same samples (plays)
both to determine the maximizing action and to estimate its value. Suppose we
divided the plays in two sets and used them to learn two independent estimates,
call them Qi(a) and Q&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(a), each an estimate of the true value
q(a), for all a G &lt;span class=aff7&gt;A.&lt;/span&gt; We could then use one estimate,
say Qi, to determine the maximizing action A* = argmax&lt;sub&gt;a&lt;/sub&gt; Qi(a), and
the other, Q&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, to provide the estimate of its value, Q&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=1pt3&gt;&lt;span
lang=EN-US&gt;(A*)&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = Q&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(argmax&lt;sub&gt;a&lt;/sub&gt;
Qi(a)). This estimate will then be unbiased in the sense that E[Q&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=1pt3&gt;&lt;span lang=EN-US&gt;(A*)] = q(A*).&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; We
can also repeat the process with the role of the two estimates reversed to
yield a second unbiased estimate Qi(argmax&lt;sub&gt;a&lt;/sub&gt;Q&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(a)). This
is the idea of &lt;span class=aff7&gt;doubled learning.&lt;/span&gt; Note that although we
learn two estimates, only one estimate is updated on each play; doubled
learning doubles the memory requirements, but is no increase at all in the&lt;br
clear=all style=&#39;page-break-before:always&#39;&gt;
amount of computation per step.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
12.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The idea of doubled learning extends naturally to algorithms for
full MDPs. For example, the doubled learning algorithm analogous to Q-learning,
called Double Q- learning, divides the time steps in two, perhaps by flipping a
coin on each step. If the coin comes up heads, the update is&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:12.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Qi(St, At) ^ Qi (St, &lt;span class=1pt3&gt;At)+&lt;/span&gt;
a Rt+i + &lt;span class=aff6&gt;yQ^&lt;/span&gt; St+i, argmax Qi (St+i,a)) \A1\AA Qi(St, &lt;span
class=2pt&gt;At).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.9pt;
margin-left:251.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-top:0cm;margin-right:1.0pt;
margin-bottom:10.25pt;margin-left:0cm;text-align:right;text-indent:0cm;
line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;If the coin comes up tails, then the same update is done with Qi and
Q&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; switched, so that Q&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; is updated. The two
approximate value functions are treated completely symmetrically. The behavior
policy can use both action value estimates. For ex&amp;shy;ample, an e-greedy policy
for Double Q-learning could be based on the average (or sum) of the two action-value
estimates. A complete algorithm for Double Q-learning is given below. This is
the algorithm used to produce the results in Figure &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. In that example, doubled learning seems to eliminate the harm
caused by maximization bias. Of course there are also doubled versions of Sarsa
and Expected Sarsa.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:12.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
black&#39;&gt;&lt;span class=af7&gt;&lt;span lang=EN-US&gt;Double Q-learning&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection147&gt;

&lt;p class=MsoNormal style=&#39;line-height:9.85pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection148&gt;

&lt;p class=492 style=&#39;margin-right:94.0pt;line-height:11.75pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize Qi(s, a) and Q&lt;/span&gt;&lt;span
class=49Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:4.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(s, a), Vs G S, a G A(s), arbitrarily Initialize Q&lt;/span&gt;&lt;span
class=49Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:4.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; (&lt;/span&gt;&lt;span class=49CenturySchoolbook&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;terminal-state,&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &amp;#8226;) = Q&lt;/span&gt;&lt;span
class=49Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:4.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=49CenturySchoolbook&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;terminal-state,&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &amp;#8226;) = 0
Repeat (for each episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 align=left style=&#39;margin-left:13.0pt;text-align:left;line-height:
11.75pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
S&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 align=left style=&#39;margin-left:13.0pt;text-align:left;line-height:
11.75pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat
(for each step of episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 align=left style=&#39;margin-left:26.0pt;text-align:left;line-height:
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    &lt;p class=492 align=left style=&#39;margin-bottom:23.8pt;text-align:left;
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    class=49Exact&gt;&lt;span lang=EN-US style=&#39;font-size:7.0pt;letter-spacing:0pt&#39;&gt;in
    Qi &lt;/span&gt;&lt;/span&gt;&lt;span class=49MingLiU0&gt;&lt;span style=&#39;font-size:7.0pt;
    letter-spacing:1.5pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
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    21.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=Exact&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Choose A from S using policy derived from Qi and Q&lt;/span&gt;&lt;span
class=49Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:4.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; (e.g., e-greedy Take action A, observe R, S&lt;sup&gt;7&lt;/sup&gt; With 0.5
probabilility:&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 align=left style=&#39;margin-left:26.0pt;text-align:left;text-indent:
14.0pt;line-height:14.4pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Qi(S, A) ^ Qi(S, A&lt;/span&gt;&lt;span class=49MingLiU1&gt;&lt;span lang=EN-US
style=&#39;font-size:7.0pt;mso-ansi-language:EN-US&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span
class=49MingLiU1&gt;&lt;span style=&#39;font-size:7.0pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;span
class=49MingLiU1&gt;&lt;span lang=ZH-TW style=&#39;font-size:7.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=49MingLiU1&gt;&lt;span style=&#39;font-size:7.0pt&#39;&gt;ֻʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;YQ&lt;/span&gt;&lt;span
class=49Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:4.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; (S&lt;sup&gt;7&lt;/sup&gt;, argmax&lt;sub&gt;a&lt;/sub&gt; Qi(S&lt;sup&gt;7&lt;/sup&gt;, a)) \A1\AA Qi(S,
else:&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 align=left style=&#39;margin-left:13.0pt;text-align:left;text-indent:
27.0pt;line-height:13.2pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Q&lt;/span&gt;&lt;span class=49Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:
4.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(S, A) ^ Q&lt;/span&gt;&lt;span class=49Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:4.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(S, A&lt;/span&gt;&lt;span
class=49MingLiU1&gt;&lt;span lang=EN-US style=&#39;font-size:7.0pt;mso-ansi-language:
EN-US&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=49MingLiU1&gt;&lt;span style=&#39;font-size:7.0pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;a(R &lt;/span&gt;&lt;span
class=49MingLiU1&gt;&lt;span style=&#39;font-size:7.0pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;yQi(S&lt;sup&gt;7&lt;/sup&gt;,
argmax&lt;sub&gt;a&lt;/sub&gt; Q&lt;/span&gt;&lt;span class=49Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:4.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(S&lt;sup&gt;7&lt;/sup&gt;, a)) \A1\AA Q&lt;/span&gt;&lt;span
class=49Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:4.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(S, S ^ S&lt;sup&gt;7&lt;/sup&gt; until S is terminal&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection149&gt;

&lt;p class=MsoNormal style=&#39;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;margin-top:.15pt;margin-right:0cm;margin-bottom:.15pt;
margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection150&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 403.3pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;*Exercise 6.12 What are the update
equations for Double Expected Sarsa with an e-greedy target policy?&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:2.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l37 level1 lfo23;
tab-stops:38.95pt;background:transparent&#39;&gt;&lt;a name=bookmark92&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Games, Afterstates, and Other
Special Cases&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In this book we try to present a uniform approach
to a wide class of tasks, but of course there are always exceptional tasks that
are better treated in a specialized way. For example, our general approach
involves learning an &lt;span class=aff7&gt;action&lt;/span&gt;-value function, but in
Chapter 1 we presented a TD method for learning to play tic-tac-toe that
learned something much more like a &lt;span class=aff7&gt;state&lt;/span&gt;-value
function. If we look closely at that example, it&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;becomes apparent that the function
learned there is neither an action-value function nor a state-value function in
the usual sense. A conventional state-value function evaluates states in which
the agent has the option of selecting an action, but the state-value function
used in tic-tac-toe evaluates board positions &lt;span class=aff7&gt;after&lt;/span&gt; the
agent has made its move. Let us call these &lt;span class=aff7&gt;afterstates,&lt;/span&gt;
and value functions over these, &lt;span class=aff7&gt;afterstate value functions&lt;/span&gt;.
Afterstates are useful when we have knowledge of an initial part of the
environment\A1\AFs dynamics but not necessarily of the full dynamics. For example,
in games we typically know the immediate effects of our moves. We know for each
possible chess move what the resulting position will be, but not how our
opponent will reply. Afterstate value functions are a natural way to take
advantage of this kind of knowledge and thereby produce a more efficient
learning method.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The reason it is more
efficient to design algorithms in terms of afterstates is appar&amp;shy;ent from the
tic-tac-toe example. A conventional action-value function would map from
positions &lt;span class=aff7&gt;and&lt;/span&gt; moves to an estimate of the value. But
many position-move pairs produce the same resulting position, as in this
example:&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection151&gt;

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  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_21&#34; o:spid=&#34;_x0000_i1102&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image54&#34;
   style=&#39;width:117pt;height:81.75pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image056.jpg&#34;
    o:title=&#34;image54&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:3.15pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In such cases the position-move pairs are
different but produce the same \A1\B0afterpo&amp;shy;sition,\A1\B1 and thus must have the same
value. A conventional action-value function would have to separately assess
both pairs, whereas an afterstate value function would immediately assess both
equally. Any learning about the position-move pair on the left would
immediately transfer to the pair on the right.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Afterstates arise in many tasks, not just games.
For example, in queuing tasks there are actions such as assigning customers to
servers, rejecting customers, or discarding information. In such cases the
actions are in fact defined in terms of their immediate effects, which are
completely known.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:6.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;It is impossible to describe
all the possible kinds of specialized problems and cor&amp;shy;responding specialized
learning algorithms. However, the principles developed in this book should
apply widely. For example, afterstate methods are still aptly de&amp;shy;scribed in
terms of generalized policy iteration, with a policy and (afterstate) value
function interacting in essentially the same way. In many cases one will still
face the choice between on-policy and off-policy methods for managing the need
for persistent exploration.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 398.65pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 6.13 Describe
how the task of Jack\A1\AFs Car Rental (Example 4.2) could be reformulated in terms
of afterstates. Why, in terms of this specific task, would such a reformulation
be likely to speed convergence?&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;\A1\F5&lt;br
clear=all style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:18.35pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l37 level1 lfo23;
tab-stops:37.95pt;background:transparent&#39;&gt;&lt;a name=bookmark93&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6.9&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Summary&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In this chapter we introduced a new kind of
learning method, temporal-difference (TD) learning, and showed how it can be
applied to the reinforcement learning prob&amp;shy;lem. As usual, we divided the
overall problem into a prediction problem and a control problem. TD methods are
alternatives to Monte Carlo methods for solving the pre&amp;shy;diction problem. In
both cases, the extension to the control problem is via the idea of generalized
policy iteration (GPI) that we abstracted from dynamic programming. This is the
idea that approximate policy and value functions should interact in such a way
that they both move toward their optimal values.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;One of the two processes making up GPI drives the
value function to accurately predict returns for the current policy; this is
the prediction problem. The other process drives the policy to improve locally
(e.g., to be e-greedy) with respect to the current value function. When the
first process is based on experience, a complication arises concerning
maintaining sufficient exploration. We can classify TD control methods
according to whether they deal with this complication by using an on- policy or
off-policy approach. Sarsa is an on-policy method, and Q-learning is an
off-policy method. Expected Sarsa is also an off-policy method as we present it
here. There is a third way in which TD methods can be extended to control which
we did not include in this chapter, called actor-critic methods. These method
are covered in full in Chapter 13.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The methods presented in this chapter are today
the most widely used reinforce&amp;shy;ment learning methods. This is probably due to
their great simplicity: they can be applied on-line, with a minimal amount of
computation, to experience generated from interaction with an environment; they
can be expressed nearly completely by single equations that can be implemented
with small computer programs. In the next few chapters we extend these
algorithms, making them slightly more complicated and significantly more
powerful. All the new algorithms will retain the essence of those introduced
here: they will be able to process experience on-line, with relatively little
computation, and they will be driven by TD errors. The special cases of TD
methods introduced in the present chapter should rightly be called &lt;span
class=aff7&gt;one-step, tabular, model- free&lt;/span&gt; TD methods. In the next two
chapters we extend them to multistep forms (a link to Monte Carlo methods) and
forms that include a model of the environment (a link to planning and dynamic
programming). Then, in the second part of the book we extend them to various
forms of function approximation rather than tables (a link to deep learning and
artificial neural networks).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Finally, in this chapter we have discussed TD
methods entirely within the context of reinforcement learning problems, but TD
methods are actually more general than this. They are general methods for
learning to make long-term predictions about dynamical systems. For example, TD
methods may be relevant to predicting financial data, life spans, election
outcomes, weather patterns, animal behavior, demands on power stations, or customer
purchases. It was only when TD methods were analyzed as pure prediction
methods, independent of their use in reinforcement learning, that their
theoretical properties first came to be well understood. Even so, these other&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:21.8pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;potential applications of TD learning methods have not yet been
extensively explored.&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:36.0pt;line-height:13.0pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark94&gt;&lt;span lang=EN-US&gt;Bibliographical and Historical Remarks&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;As we outlined in Chapter 1, the idea of TD learning has its early
roots in ani&amp;shy;mal learning psychology and artificial intelligence, most notably
the work of Samuel (1959) and Klopf (1972). Samuel\A1\AFs work is described as a
case study in Section 16.2. Also related to TD learning are Holland\A1\AFs (1975,
1976) early ideas about consistency among value predictions. These influenced
one of the authors (Barto), who was a graduate student from 1970 to 1975 at the
University of Michigan, where Holland was teaching. Holland\A1\AFs ideas led to a
number of TD-related systems, including the work of Booker (1982) and the
bucket brigade of Holland (1986), which is related to Sarsa as discussed below.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;6.1-2 Most of the specific material from these sections is from
Sutton (1988), includ&amp;shy;ing the TD(0) algorithm, the random walk example, and the
term \A1\B0temporal- difference learning.\A1\B1 The characterization of the relationship
to dynamic programming and Monte Carlo methods was influenced by Watkins
(1989), Werbos (1987), and others. The use of backup diagrams here and in other
chapters is new to this book.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Tabular TD(0) was proved to converge in the mean by Sutton (1988)
and with probability 1 by Dayan (1992), based on the work of Watkins and Dayan
(1992). These results were extended and strengthened by Jaakkola, Jordan, and
Singh (1994) and Tsitsiklis (1994) by using extensions of the powerful existing
theory of stochastic approximation. Other extensions and general&amp;shy;izations are
covered in later chapters.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l17 level1 lfo25;
tab-stops:36.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6.3&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;The optimality of the TD
algorithm under batch training was established by Sutton (1988). Illuminating
this result is Barnard\A1\AFs (1993) derivation of the TD algorithm as a combination
of one step of an incremental method for learning a model of the Markov chain
and one step of a method for computing predictions from the model. The term &lt;span
class=aff7&gt;certainty equivalence&lt;/span&gt; is from the adaptive control literature
(e.g., Goodwin and Sin, 1984).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l17 level1 lfo25;
tab-stops:36.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6.4&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;The Sarsa algorithm was
introduced by Rummery and Niranjan (1994). They explored it in conjunction with
neural networks and called it \A1\B0Modified Con- nectionist Q-learning\A1\B1. The name
\A1\B0Sarsa\A1\B1 was introduced by Sutton (1996). The convergence of one-step tabular
Sarsa (the form treated in this chapter) has been proved by Satinder Singh
(personal communication). The \A1\B0windy gridworld\A1\B1 example was suggested by Tom
Kalt.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Holland\A1\AFs (1986) bucket brigade idea evolved into an algorithm
closely related to Sarsa. The original idea of the bucket brigade involved
chains of rules triggering each other; it focused on passing credit back from
the current rule to the rules that triggered it. Over time, the bucket brigade
came to be more &lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection153&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=213&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;like TD learning in passing
credit back to any temporally preceding rule, not just to the ones that
triggered the current rule. The modern form of the bucket brigade, when
simplified in various natural ways, is nearly identical to one-step Sarsa, as
detailed by Wilson (1994).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.0pt;
margin-left:36.0pt;text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l17 level1 lfo25;tab-stops:36.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;Q-learning was
introduced by Watkins (1989), whose outline of a conver&amp;shy;gence proof was made
rigorous by Watkins and Dayan (1992). More general convergence results were
proved by Jaakkola, Jordan, and Singh (1994) and Tsitsiklis (1994).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.0pt;
margin-left:36.0pt;text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l17 level1 lfo25;tab-stops:36.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;Expected Sarsa
was first described in an exercise in the first edition of this book, then
fully investigated by van Seijen, van Hasselt, Whiteson, and Weir&amp;shy;ing (2009).
They established its convergence properties and conditions under which it will
outperform regular Sarsa and Q-learning. Our Figure 6.7 is adapted from their
results. Our presentation differs slightly from theirs in that they define
\A1\B0Expected Sarsa\A1\B1 to be an on-policy method exclusively, whereas we use this
name for the general algorithm in which the target and behavior policies are
allowed to differ.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.0pt;
margin-left:36.0pt;text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l17 level1 lfo25;tab-stops:36.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;Maximization
bias and doubled learning were introduced and extensively in&amp;shy;vestigated by Hado
van Hasselt (2010, 2011). The example MDP in Figure 6.8 was adapted from that
in his Figure 4.1 (van Hasselt, 2011).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;text-indent:-36.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;mso-list:l17 level1 lfo25;tab-stops:36.0pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:Batang&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;6.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;The notion of
an afterstate is the same as that of a \A1\B0post-decision state\A1\B1 (Van Roy et al.,
1997; Powell, 2010).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection154&gt;

&lt;p class=4f style=&#39;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
right 174.5pt 185.5pt 336.0pt 398.65pt;background:transparent&#39;&gt;&lt;span class=41&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW;font-style:normal&#39;&gt;152&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=46&gt;&lt;span lang=EN-US&gt;CHAPTER&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;6.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;TEMPORAL-DIFFERENCE&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;LEARNING&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;i&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/i&gt;&lt;/p&gt;

&lt;div class=WordSection155&gt;

&lt;p class=8a style=&#39;margin-bottom:28.9pt;line-height:19.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Chapter 7&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f1 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:37.75pt;
margin-left:0cm;line-height:22.0pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark95&gt;&lt;span lang=EN-US&gt;Multi-step Bootstrapping&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;In this chapter we unify the methods presented in the previous two
chapters. Neither Monte Carlo methods nor the one-step TD methods presented in
the previous chapter are always the best. Multi-step TD methods generalize both
these methods so that one can switch from one to the other smoothly. They span
a spectrum with Monte Carlo methods at one end and one-step TD methods at the
other, and often the intermediate methods will perform better than either
extreme method.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;Another way of looking at the benefits of multi-step
methods is that they free you from the tyranny of the time step. With one-step
methods the same step determines how often the action can be changed and the
time interval over which bootstrapping is done. In many applications one wants
to be able to update the action very fast to take into account anything that
has changed, but bootstrapping works best if it is over a length of time in
which a significant and recognizable state change has occurred. With one-step
methods, these time intervals are the same and so a compromise must be made.
Multi-step methods enable bootstrapping to occur over longer time intervals,
freeing us from the tyranny of the single time step.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;Multi-step methods are usually associated with the
algorithmic idea of eligibility traces, but here we will consider the
multi-step idea on its own, postponing the treatment of eligibility-trace
mechanisms until later, in Chapter 12.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:21.35pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;As usual, we
first consider the prediction problem and then the control problem. That is, we
first consider how multi-step methods can help in predicting returns as a
function of state for a fixed policy (i.e., in estimating ). Then we extend the
ideas to action values and control methods.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l0 level1 lfo26;
tab-stops:36.25pt 36.25pt;background:transparent&#39;&gt;&lt;a name=bookmark96&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;7.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;n-step TD Prediction&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;What is the space of methods lying between Monte Carlo and TD
methods? Consider estimating from sample episodes generated using n. Monte
Carlo methods perform a backup for each state based on the entire sequence of
observed rewards from that state until the end of the episode. The backup of
one-step TD methods, on the other hand, is based on just the one next reward,
bootstrapping from the value of the&lt;br clear=all style=&#39;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;span class=ac&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;state one
step later as a proxy for the remaining rewards. One kind of intermediate
method, then, would perform a backup based on an intermediate number of
rewards: more than one, but less than all of them until termination. For
example, a two-step backup would be based on the first two rewards and the
estimated value of the state two steps later. Similarly, we could have
three-step backups, four-step backups, and so on. Figure 7.1 diagrams the
spectrum of &lt;/span&gt;&lt;/span&gt;&lt;span class=aff7&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;n-step backups&lt;/span&gt;&lt;/span&gt;&lt;span class=ac&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt; for Vn, with the one-step TD backup on the left and
the up-until-termination Monte Carlo backup on the right.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The methods that use n-step backups are still TD
methods because they still change an earlier estimate based on how it differs
from a later estimate. Now the later estimate is not one step later, but n
steps later. Methods in which the temporal difference extends over n steps are
called &lt;span class=aff7&gt;n-step TD methods.&lt;/span&gt; The TD methods introduced in
the previous chapter all used one-step backups, which is why we call them
one-step TD methods.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:16.55pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;More formally, consider the backup applied to state St as a result
of the state- reward sequence, St&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span lang=EN-US
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\B3\F3&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, St&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span lang=EN-US style=&#39;font-size:11.5pt;mso-ansi-language:
EN-US&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\B3\F3&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &amp;#8226; &amp;#8226; &amp;#8226;, Rt, St (omitting the actions for simplic&amp;shy;ity). We know that
in Monte Carlo backups the estimate of Vn (St) is updated in the direction of
the complete return:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-indent:0cm;line-height:11.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Gt =&lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C4\E2ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=ZH-TW style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;+ Y &lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C4\E2ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=ZH-TW style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;sup&gt;2&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C4\E2ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;3 + &lt;/span&gt;&lt;span lang=EN-US&gt;\A1\F6\A1\F6\A1\F6 &lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;+ &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;sup&gt;T-t-1&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;RT,&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection156&gt;

&lt;p class=MsoNormal style=&#39;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;margin-top:.15pt;margin-right:0cm;margin-bottom:.15pt;
margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection157&gt;

&lt;p class=133 style=&#39;margin-left:1.0pt;line-height:8.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=130&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;1 &lt;/span&gt;&lt;span lang=EN-US&gt;-step TD&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=133 style=&#39;margin-left:1.0pt;line-height:8.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=130&gt;&lt;span lang=EN-US&gt;and TD(0)
2-step TD 3-step TD&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=133 align=right style=&#39;margin-right:6.0pt;text-align:right;line-height:
11.05pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=130&gt;&lt;span
lang=EN-US&gt;M-step TD n-step TD and Monte Carlo&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection158&gt;

&lt;p class=MsoNormal style=&#39;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;margin-top:5.85pt;margin-right:0cm;margin-bottom:
5.85pt;margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection159&gt;

&lt;p class=324 style=&#39;margin-left:74.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:18.0pt;mso-line-height-rule:exactly;mso-pagination:lines-together;
page-break-after:avoid;tab-stops:right 138.45pt 183.8pt;background:transparent&#39;&gt;&lt;a
name=bookmark97&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\B6\A1&lt;/span&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark97&#39;&gt;&lt;span class=32Batang0&gt;&lt;span lang=ZH-TW
style=&#39;font-size:18.0pt;mso-ansi-language:ZH-TW&#39;&gt;&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark97&#39;&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\C1\CB&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark97&#39;&gt;&lt;span class=32Batang0&gt;&lt;span lang=ZH-TW
style=&#39;font-size:18.0pt;mso-ansi-language:ZH-TW&#39;&gt;&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark97&#39;&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\B6\A1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=550 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:25.7pt;
margin-left:74.0pt;line-height:19.5pt;mso-line-height-rule:exactly;tab-stops:
right 138.45pt 183.8pt;background:transparent&#39;&gt;&lt;span class=55SimSun&gt;&lt;span
style=&#39;font-size:12.5pt&#39;&gt;\A9\96&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;o&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;o&lt;/span&gt;&lt;/p&gt;

&lt;p class=560 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:27.1pt;
margin-left:122.0pt;line-height:12.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;\A9\96&lt;/p&gt;

&lt;p class=560 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:27.1pt;
margin-left:172.0pt;line-height:12.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;\A9\96&lt;/p&gt;

&lt;p class=560 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:49.55pt;
margin-left:242.0pt;line-height:12.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;\A9\96&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:10.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.75pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Figure 7.1: The spectrum ranging from
the one-step backups of simple TD methods to the up-until-termination backups
of Monte Carlo methods. In between are the n-step back&amp;shy;ups, based on n steps of
real rewards and the estimated value of the nth next state, all appropriately
discounted.&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.55pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where T is the last time step of the episode. Let us call this
quantity the &lt;span class=aff7&gt;target&lt;/span&gt; of the backup. Whereas in Monte
Carlo backups the target is the return, in one-step backups the target is the
first reward plus the discounted estimated value of the next state, which we
call the &lt;span class=aff7&gt;one-step return&lt;/span&gt;:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.1pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+i = &lt;sup&gt;R&lt;/sup&gt;t+i + &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;V&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;sup&gt;(S&lt;/sup&gt;t+i),&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;where Vt : S R here is an estimate at
time &lt;span class=aff7&gt;t&lt;/span&gt; of v^. The subscripts on Gt&lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+i indicate that it is truncated return for time t using rewards up
until time t + &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, and the superscript s reminds us that the missing rewards are
replaced by an estimate at a subsequent &lt;span class=aff7&gt;state&lt;/span&gt; (shortly
we will introduce truncated returns using estimated values at state-action
pairs). In the one-step return, YVt(St+i) takes the place of&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
dashed 182.9pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;the other terms YRt&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + Y&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Rt&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+3&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; +&lt;span
style=&#39;mso-tab-count:1 dashed&#39;&gt;------ &lt;/span&gt;+ y&lt;sup&gt;T-t-1&lt;/sup&gt;Rr of the full
return, as we discussed&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;in the previous chapter. Our point now is that this idea makes just
as much sense after two steps as it does after one. The target for a two-step
backup is the two-step return:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.2pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t:t&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = &lt;sup&gt;R&lt;/sup&gt;t&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + &lt;sup&gt;YR&lt;/sup&gt;t&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;sup&gt;2&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;V&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(S&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t+&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where now y&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Vt+i(St+&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) corrects for the absence of the terms Y&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Rt&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+3&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + Y&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;3&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Rt&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+4&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&amp;#8226; &amp;#8226; &amp;#8226; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+ y&lt;sup&gt;T-t-&lt;/sup&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Rr. Similarly,
the target for an arbitrary n-step backup is the n-step return:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.5pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 398.45pt;
background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t:t+n
= &lt;sup&gt;R&lt;/sup&gt;t&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + &lt;sup&gt;YR&lt;/sup&gt;t&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&amp;#8226; &amp;#8226; &amp;#8226; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+ &lt;sup&gt;Y n iR&lt;/sup&gt;t+n + &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;nV&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t+n-&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;(S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+n),&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(7&lt;/sup&gt;.&lt;sup&gt;1)&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;for all n, t such that n &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&amp;gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;1 and 0 &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;&amp;lt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t &amp;lt; T &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;n. All n-step returns can be considered approximations to the full
return, truncated after n steps and then corrected for the remaining missing
terms by Vt+&lt;sub&gt;n-&lt;/sub&gt;i(St+&lt;sub&gt;n&lt;/sub&gt;). If t+n &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&amp;gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;T (if the n-step return extends to or beyond termination), then all
the missing terms are taken as zero, and the n-step return defined to be equal
to the ordinary full return (Gt&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+n == Gt if t + n &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&amp;gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;T).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.55pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Note that n-step returns for n &amp;gt; 1 involve future rewards and
states that are not available at the time of transition from t to t + 1. No
real algorithm can use the n-step return until after it has seen Rt+&lt;sub&gt;n&lt;/sub&gt;
and computed Vt+&lt;sub&gt;n-&lt;/sub&gt;i. The first time these are available is t + n.
The natural algorithm state-value learning algorithm for using n-step returns
is thus&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.35pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:right 288.9pt 299.9pt left 303.75pt right 398.45pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Vt+n(St) == Vt+n-i(St) + a [Gt&lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+n &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Vt+n&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;-1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;span class=1pt3&gt;(St)],&lt;/span&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&amp;lt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t &amp;lt; T,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(7.2)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;while the values of all other states
remain unchanged, Vt+&lt;sub&gt;n&lt;/sub&gt;(s) = Vt+&lt;sub&gt;n-&lt;/sub&gt;i(s), &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;s = St. We call this algorithm &lt;span class=aff7&gt;n-step TD.&lt;/span&gt;
Note that no changes at all are made during the first n &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;1 steps of each episode. To make up for that, an equal number of
addition updates are made at the end of the episode, after termination and
before starting the next episode. Complete pseudocode is given in the box on
the next page.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 7.1 In Chapter &lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; we noted that the Monte Carlo error can be written as the sum of TD
errors (6.5) if the value estimates don\A1\AFt change from step to step (&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;). Show that the n-step error used in (7.2) can also be written as a
sum TD errors (again if the value estimates don\A1\AFt change) generalizing the
earlier result. \A1\F5&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.75pt;
margin-left:1.0pt;text-indent:15.0pt;line-height:9.5pt;mso-line-height-rule:
exactly;background:black&#39;&gt;&lt;span class=51CenturySchoolbook&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=511&gt;&lt;span
lang=EN-US&gt;-step TD for estimating &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang0&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt; ^ &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang0&gt;&lt;span lang=EN-US style=&#39;font-weight:
normal&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize V(s) arbitrarily, s G S&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Parameters: step size a G (0,1], a positive
integer &lt;span class=aff7&gt;n&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;All store and access operations (for St and Rt) can take their index
mod n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat (for each episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:212.0pt;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
and store So = terminal T ^&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For &lt;span class=aff7&gt;t&lt;/span&gt; = &lt;span
class=afff&gt;0,1, &lt;/span&gt;&lt;span class=2pt&gt;2,...:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;| If t &amp;lt; T, then:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:55.7pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Take an
action according to n(-|St)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:55.7pt center 250.55pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Observe and
store the next reward as&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;Rt+i and the next
state as St+i&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:55.7pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;If St+i is
terminal, then T \A1\AA t + 1&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:120.95pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;| t \A1\AA t \A1\AA n + &lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(t
is the time whose state\A1\AFs estimate is being updated)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;| If &lt;span class=aff6&gt;t &amp;gt; 0:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
tab-stops:55.7pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;G \A1\AA &lt;/span&gt;&lt;span
class=CenturySchoolbookc&gt;&lt;span lang=EN-US style=&#39;font-size:13.0pt&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;=$&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;/span&gt;&lt;span class=CenturySchoolbookc&gt;&lt;span lang=EN-US
style=&#39;font-size:13.0pt&#39;&gt;0 &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Y&lt;sup&gt;i-T-i&lt;/sup&gt;Ri&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:55.7pt center 366.25pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;If t + n
&amp;lt; T, then: &lt;span class=aff7&gt;G&lt;/span&gt; \A1\AA &lt;span class=aff7&gt;G&lt;/span&gt; + Y&lt;sup&gt;n&lt;/sup&gt;V(S&lt;sub&gt;r&lt;/sub&gt;+&lt;sub&gt;n&lt;/sub&gt;)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(G&lt;sub&gt;r&lt;/sub&gt;&lt;/span&gt;\A3\BA&lt;sub&gt;&lt;span
lang=EN-US&gt;r&lt;/span&gt;&lt;/sub&gt;&lt;span lang=EN-US&gt;+&lt;sub&gt;n&lt;/sub&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.4pt;
margin-left:30.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:55.7pt;background:
transparent&#39;&gt;&lt;span class=aff6&gt;&lt;span lang=EN-US&gt;|&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;V(St) \A1\AA V(St)&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + a [G \A1\AA V(S&lt;sub&gt;r&lt;/sub&gt;)]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:28.75pt;
margin-left:30.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Until &lt;span class=aff6&gt;t = T \A1\AA 1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 399.9pt;background:transparent&#39;&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span
lang=EN-US&gt;Exercise 7.2 (programming) &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;With an
n-step method, the value estimates &lt;span class=aff7&gt;do &lt;/span&gt;change from step
to step, so an algorithm that used the sum of TD errors (see previous exercise)
in place of the error in (7.2) would actually be a slightly different
algorithm. Would it be a better algorithm or a worse one? Devise and program a
small experiment to answer this question empirically.&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.55pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The n-step return uses the value function Vt+&lt;sub&gt;n-&lt;/sub&gt;i to
correct for the missing rewards beyond Rt+&lt;sub&gt;n&lt;/sub&gt;. An important property
of n-step returns is that their expectation is guaranteed to be a better
estimate of Vn than Vt+&lt;sub&gt;n-&lt;/sub&gt;i is, in a worst-state sense. That is, the
worst error of the expected n-step return is guaranteed to be less than or
equal to y&lt;span class=aff7&gt;&lt;sup&gt;n&lt;/sup&gt;&lt;/span&gt; times the worst error under Vt+&lt;sub&gt;n&lt;/sub&gt;_i:&lt;/span&gt;&lt;/p&gt;

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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;E&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;[G&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;|S&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;= s] \A1\AA V&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(s)&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&amp;lt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;span
class=aff7&gt;Y&lt;/span&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;max&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;V&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
class=1pt3&gt;&lt;span lang=EN-US&gt;-i(s)&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; \A1\AA V&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(s) ,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(7.3)&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=right style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:
7.55pt;margin-left:0cm;text-align:right;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;for all n &amp;gt; 1. This is called the &lt;span class=aff7&gt;error
reduction property&lt;/span&gt; of n-step returns. Because of the error reduction
property, one can show formally that all n-step TD methods converge to the
correct predictions under appropriate technical conditions. The n- step TD
methods thus form a family of sound methods, with one-step TD methods and Monte
Carlo methods as extreme members.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;Example 7.1: &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;n&lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;-step TD
Methods on the Random Walk &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Consider using n-step
TD methods on the random walk task described in Example 6.2 and shown in Figure
6.2. Suppose the first episode progressed directly from the center state, &lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;C&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, to the
right, through &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;D &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;and &lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;E&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, and then terminated on the right with a return of 1. Recall that
the estimated values of all the states started at an intermediate&lt;br clear=all
style=&#39;page-break-before:always&#39;&gt;
value, V(s) = 0,5. As a result of this experience, a one-step method would
change only the estimate for the last state, V(&lt;/span&gt;&lt;span
class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;E&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;), which
would be incremented toward 1, the observed return. A two-step method, on the
other hand, would increment the values of the two states preceding termination:
V(&lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;D&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) and V(&lt;/span&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span lang=EN-US&gt;E&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) both would be incremented toward 1. A three-step method, or any
n-step method for n &amp;gt; &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, would increment the
values of all three of the visited states toward &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, all by the
same amount.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:39.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Which value of n is better? Figure 7.2 shows the results of a simple
empirical test for a larger random walk process, with 19 states (and with a \A1\AA1
outcome on the left, all values initialized to &lt;/span&gt;&lt;span class=9pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;), which we
use as a running example in this chapter. Results are shown for n-step TD
methods with a range of values for n and a. The performance measure for each
parameter setting, shown on the vertical axis, is the square-root of the
average squared error between the predictions at the end of the episode for the
19 states and their true values, then averaged over the first 10 episodes and &lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;100&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; repetitions of the whole experiment (the same sets of walks were
used for all parameter settings). Note that methods with an intermediate value
of n worked best. This illustrates how the generalization of TD and Monte Carlo
methods to n-step methods can potentially perform better than either of the two
extreme methods.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 400.1pt;background:transparent&#39;&gt;&lt;span class=ArialUnicodeMS9&gt;&lt;span
lang=EN-US&gt;Exercise 7.3 &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Why do you think a
larger random walk task (19 states instead of 5) was used in the examples of
this chapter? Would a smaller walk have shifted the advantage to a different
value of n? How about the change in left-side outcome from 0 to \A1\AA1 made in the
larger walk? Do you think that made any difference in the best value of n?&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=271 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l0 level1 lfo26;tab-stops:37.25pt;background:transparent&#39;&gt;&lt;a
name=bookmark98&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;7.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=270&gt;&lt;span lang=EN-US&gt;n-step Sarsa&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;How can n-step methods be used not just for prediction, but for
control? In this section we show how n-step methods can be combined with Sarsa
in a straightforward way to produce an on-policy TD control method. The n-step
version of Sarsa we call n-step Sarsa, and the original version presented in
the previous chapter we henceforth call &lt;span class=aff7&gt;one-step Sarsa,&lt;/span&gt;
or &lt;span class=aff7&gt;Sarsa(0).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:16.55pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The main idea is to simply switch states for actions (state-action
pairs) and then use an e-greedy policy. The backup diagrams for n-step Sarsa,
shown in Figure 7.3 are like those of n-step TD (Figure 7.1), strings of
alternating states and actions, except that the Sarsa ones all start and end
with an action rather a state. We define n-step returns in terms of estimated
action values:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t:t+n = &lt;sup&gt;R&lt;/sup&gt;t+&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;sup&gt;YR&lt;/sup&gt;t&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + ^ &amp;#8226; &lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;#8226;&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;^ &lt;sup&gt;iR&lt;/sup&gt;t+n +&lt;sup&gt;Y&lt;/sup&gt;^Qt+n-&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;(S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+n, &lt;sup&gt;A&lt;/sup&gt;t+n&lt;sup&gt;), n&lt;/sup&gt;
&amp;gt; &lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\B9\A4&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=ZH-TW style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &amp;lt; &lt;sup&gt;t&lt;/sup&gt; &amp;lt; &lt;sup&gt;T\A1\AAn&lt;/sup&gt;,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-right:1.0pt;text-align:right;
text-indent:0cm;line-height:26.4pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;(7.4)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:26.4pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;with Gt&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+n == Gt if t + n &amp;gt; T. The natural algorithm is then&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:15.0pt;line-height:26.4pt;mso-line-height-rule:exactly;tab-stops:
right 328.5pt 339.5pt center 345.3pt right 371.2pt 398.8pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Qt+n(St, At) == Qt+n-i(St, At) + a [Gt&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+n \A1\AA Qt+n&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;-1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; (St, &lt;span class=1pt3&gt;At)],&lt;/span&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;&amp;lt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;t&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;span
class=1pt3&gt;&amp;lt;T,&lt;/span&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;(7.5)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;while the values of all other states remain
unchanged, Qt+n(s, a) = Qt+n_i(s,a), for all s, a such that s = St or a = At.
This is the algorithm we call &lt;span class=aff7&gt;n-step Sarsa.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection160&gt;

&lt;p class=MsoNormal style=&#39;margin-top:5.3pt;margin-right:0cm;margin-bottom:5.3pt;
margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection161&gt;

&lt;p class=95 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:60.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:8.9pt;mso-line-height-rule:exactly;tab-stops:right 154.1pt;
background:transparent&#39;&gt;&lt;span class=90&gt;&lt;span lang=EN-US&gt;w-step Sarsa&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;n-step&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=95 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;line-height:8.9pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=90&gt;&lt;span
lang=EN-US&gt;n-step Sarsa aka Monte Carlo Expected Sarsa&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:7.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection162&gt;

&lt;p class=MsoNormal style=&#39;line-height:6.9pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection163&gt;

&lt;p class=126 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:123.0pt;
margin-left:42.0pt;line-height:30.0pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark99&gt;&lt;span lang=EN-US&gt;I &lt;/span&gt;&lt;/a&gt;&lt;span style=&#39;mso-bookmark:bookmark99&#39;&gt;&lt;span
class=12MingLiU&gt;&lt;span style=&#39;font-size:28.5pt&#39;&gt;\B6\A1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark99&#39;&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span
lang=EN-US&gt;I &lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark99&#39;&gt;&lt;span
class=12MingLiU&gt;&lt;span style=&#39;font-size:28.5pt&#39;&gt;\C1˶\A1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:26.4pt;mso-element-frame-hspace:
36.95pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
mso-element-anchor-horizontal:column;mso-element-left:336.55pt;mso-element-top:
.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=35&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=35 style=&#39;padding-top:0cm;padding-right:
  36.95pt;padding-bottom:0cm;padding-left:36.95pt&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:26.4pt;mso-element-frame-hspace:36.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:336.55pt;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_22&#34; o:spid=&#34;_x0000_i1101&#34;
   type=&#34;#_x0000_t75&#34; alt=&#34;image56&#34; style=&#39;width:27pt;height:26.25pt;
   visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image057.png&#34;
    o:title=&#34;image56&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:16.05pt;margin-right:1.0pt;margin-bottom:
0cm;margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:11.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Figure 7.3: The spectrum of n-step backups for
state-action values. They range from the one-step backup of Sarsa(0) to the up-until-termination
backup of a Monte Carlo method. In between are the n-step backups, based on n
steps of real rewards and the estimated value of the nth next state-action
pair, all appropriately discounted. On the far right is the backup diagram for
n-step Expected Sarsa.&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection164&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.75pt;
margin-left:16.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:black&#39;&gt;&lt;span class=af7&gt;&lt;span lang=EN-US&gt;n-step Sarsa for estimating
Q ^ q*, or Q ^ for a given n&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:16.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
Q(s, a) arbitrarily, &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;s &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;S, a &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:16.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
n to be e-greedy with respect to Q, or to a fixed given policy&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:16.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Parameters:
step size a &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(0,1], small e &amp;gt; 0,
a positive integer n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.0pt;
margin-left:16.0pt;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;All store and access
operations (for St, At, and Rt) can take their index mod n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:16.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat
(for each episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:190.0pt;margin-bottom:0cm;
margin-left:29.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
and store So = terminal Select and store an action Ao &lt;/span&gt;&lt;span
class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;n(&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;-|&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;So)&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:29.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;T &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;\A1\AA ^&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:29.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For t =
0, 1, 2, . . . :&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:43.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If t &amp;lt;
T, then:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:58.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Take action At&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:12.0pt;margin-bottom:0cm;
margin-left:58.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Observe and store the next reward as Rt+i and the
next state as St+i If St+i is terminal, then:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:289.0pt;margin-bottom:0cm;
margin-left:58.0pt;margin-bottom:.0001pt;text-indent:14.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+1 else:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:50.0pt;margin-bottom:0cm;
margin-left:43.0pt;margin-bottom:.0001pt;text-indent:29.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;tab-stops:127.5pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Select and store an action At+i &lt;/span&gt;&lt;span class=MingLiUfb&gt;&lt;span
style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;n(&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;-|&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;St+i) t &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;n + &lt;/span&gt;&lt;span
class=9pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(t is
the time whose estimate is being updated)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.55pt;
margin-left:43.0pt;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If t &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&amp;gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;0:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:58.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;g&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;E&lt;/span&gt;&lt;span class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt;
mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span class=afff0&gt;&lt;span lang=EN-US&gt;=&lt;a
style=&#39;mso-footnote-id:ftn11&#39; href=&#34;#_ftn11&#34; name=&#34;_ftnref11&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=afff0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[11]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;n+&lt;sup&gt;T&lt;/sup&gt;&lt;sub&gt;i&lt;/sub&gt;+&lt;sup&gt;n,T&lt;/sup&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; y &lt;sup&gt;i-T-i&lt;/sup&gt;Ri&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:58.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;
tab-stops:right 394.95pt;background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;If t&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; + &lt;sup&gt;n&lt;/sup&gt; &amp;lt; &lt;sup&gt;T, then G &lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; + Y&lt;sup&gt;nQ(S&lt;/sup&gt;T+n, &lt;sup&gt;A&lt;/sup&gt;t
+n&lt;sup&gt;)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(G&lt;/sup&gt;t&lt;/span&gt;&lt;span
class=MingLiUf9&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;T +n&lt;sup&gt;)&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:58.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.95pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Q(St, At) &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Q(St, At) + a [G &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Q(St, A)]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:12.0pt;margin-bottom:0cm;
margin-left:29.0pt;margin-bottom:.0001pt;text-indent:29.0pt;line-height:12.95pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If n is
being learned, then ensure that &lt;span class=afff1&gt;^(-|St)&lt;/span&gt; is e-greedy
wrt Q Until &lt;span class=aff6&gt;t = T \A1\AA 1&lt;/span&gt;&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;table class=MsoNormalTable border=0 cellspacing=0 cellpadding=0
 style=&#39;margin-left:.5pt;border-collapse:collapse;mso-table-layout-alt:fixed;
 mso-table-overlap:never;mso-padding-alt:0cm .5pt 0cm .5pt&#39;&gt;
 &lt;tr style=&#39;mso-yfti-irow:0;mso-yfti-firstrow:yes;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:11.75pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.25pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:1;height:11.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:11.75pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.25pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
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  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
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  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
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  &lt;/td&gt;
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  exactly&#39;&gt;
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  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
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  &lt;/td&gt;
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  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
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  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  exactly&#39;&gt;
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  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
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  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
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  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
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  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
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  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
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  exactly&#39;&gt;
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  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  exactly&#39;&gt;
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  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  exactly&#39;&gt;
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  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  exactly&#39;&gt;
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  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.25pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
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  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
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  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:11.75pt;border-top:solid windowtext 1.0pt;
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  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
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  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:4.0pt;text-indent:0cm;line-height:7.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:120.0pt;mso-element-frame-height:88.8pt;mso-element-frame-hspace:
  96.95pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:193.7pt;mso-element-top:
  23.8pt&#39;&gt;&lt;span class=75pt1&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;G&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
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  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.25pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
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  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:11.75pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:4.0pt;text-indent:0cm;line-height:7.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:120.0pt;mso-element-frame-height:88.8pt;mso-element-frame-hspace:
  96.95pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:193.7pt;mso-element-top:
  23.8pt&#39;&gt;&lt;span class=75pt1&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.25pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:6;height:11.05pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
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  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:11.75pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.25pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:7;mso-yfti-lastrow:yes;height:11.3pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:11.75pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=16 valign=top style=&#39;width:12.25pt;border:solid windowtext 1.0pt;
  mso-border-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:11.3pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:120.0pt;
  mso-element-frame-height:88.8pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:193.7pt;mso-element-top:23.8pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:345.6pt;mso-element-frame-height:
22.3pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:97.0pt;mso-element-top:-2.0pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=590 height=30&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=30 style=&#39;padding-top:0cm;padding-right:
  96.95pt;padding-bottom:0cm;padding-left:96.95pt&#39;&gt;
  &lt;p class=3f1 style=&#39;margin-left:108.0pt;tab-stops:right 270.25pt 301.45pt center 325.45pt;
  background:transparent;mso-element:frame;mso-element-frame-width:345.6pt;
  mso-element-frame-height:22.3pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:97.0pt;mso-element-top:-2.0pt&#39;&gt;&lt;span lang=EN-US&gt;Action
  values increased&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Action&lt;span
  style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;values&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;increased&lt;/span&gt;&lt;/p&gt;
  &lt;p class=3f1 style=&#39;tab-stops:right 129.6pt 169.7pt center 185.75pt right 270.7pt left 274.1pt;
  background:transparent;mso-element:frame;mso-element-frame-width:345.6pt;
  mso-element-frame-height:22.3pt;mso-element-frame-hspace:96.95pt;mso-element-wrap:
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      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=8 valign=top style=&#39;width:6.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=8 valign=top style=&#39;width:6.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:11.75pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=8 valign=top style=&#39;width:6.25pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=8 valign=top style=&#39;width:5.75pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 colspan=2 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.25pt;border:solid windowtext 1.0pt;
      border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:3;height:11.05pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:6.0pt;text-indent:0cm;line-height:
      7.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=75pt1&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;r&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=8 valign=top style=&#39;width:6.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=8 valign=top style=&#39;width:6.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:11.75pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=8 valign=top style=&#39;width:6.25pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=8 valign=top style=&#39;width:5.75pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=8 valign=top style=&#39;width:6.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=8 valign=top style=&#39;width:6.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.25pt;border:solid windowtext 1.0pt;
      border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:4;height:11.3pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:6.0pt;text-indent:0cm;line-height:
      7.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=75pt1&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 colspan=2 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:11.75pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:4.0pt;text-indent:0cm;line-height:
      7.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=75pt1&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;G&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 colspan=2 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=8 valign=top style=&#39;width:6.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=8 valign=top style=&#39;width:6.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.25pt;border:solid windowtext 1.0pt;
      border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
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     &lt;tr style=&#39;mso-yfti-irow:5;height:10.8pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 colspan=2 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      &lt;td width=16 valign=top style=&#39;width:11.75pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:4.0pt;text-indent:0cm;line-height:
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      class=MingLiUff&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\B1\BE&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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      &lt;td width=16 colspan=2 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=8 valign=top style=&#39;width:6.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=8 valign=top style=&#39;width:6.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.25pt;border:solid windowtext 1.0pt;
      border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
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     &lt;tr style=&#39;mso-yfti-irow:6;height:11.05pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      &lt;td width=16 colspan=2 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:11.75pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 colspan=2 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 colspan=2 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      &lt;td width=16 valign=top style=&#39;width:12.25pt;border:solid windowtext 1.0pt;
      border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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     &lt;tr style=&#39;mso-yfti-irow:7;mso-yfti-lastrow:yes;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 colspan=2 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
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      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      &lt;td width=16 colspan=2 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      mso-border-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
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      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      exactly&#39;&gt;
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      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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      exactly&#39;&gt;
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      exactly&#39;&gt;
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      exactly&#39;&gt;
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      exactly&#39;&gt;
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      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:3;height:11.05pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:11.75pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:
      9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      lang=EN-US&gt;-&amp;#9658;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:4.0pt;text-indent:0cm;line-height:
      7.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=75pt1&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:4;height:11.05pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:11.75pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:4.0pt;text-indent:0cm;line-height:
      7.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=75pt1&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;G&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:4.0pt;text-indent:0cm;line-height:
      7.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=75pt1&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:5;height:11.05pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:11.75pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=afffff6 style=&#39;margin-left:4.0pt;text-indent:0cm;line-height:
      8.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
      class=MingLiUff&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;ţ&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:6;height:11.05pt;mso-height-rule:exactly&#39;&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:11.75pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border-top:solid windowtext 1.0pt;
      border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
      mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
     &lt;tr style=&#39;mso-yfti-irow:7;mso-yfti-lastrow:yes;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
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      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:11.75pt;border:solid windowtext 1.0pt;
      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
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      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
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      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
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      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
      solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
      background:white;padding:0cm .5pt 0cm .5pt;height:11.3pt;mso-height-rule:
      exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
      &lt;td width=16 valign=top style=&#39;width:12.0pt;border:solid windowtext 1.0pt;
      mso-border-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
      height:11.3pt;mso-height-rule:exactly&#39;&gt;
      &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
      &lt;/td&gt;
     &lt;/tr&gt;
    &lt;/table&gt;
    &lt;/div&gt;
    &lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection165&gt;

&lt;p class=MsoNormal style=&#39;margin-top:1.1pt;margin-right:0cm;margin-bottom:1.1pt;
margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection166&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:17.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.75pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Figure 7.4: Gridworld example of the speedup of policy learning due
to the use of n-step methods. The first panel shows the path taken by an agent
in a single episode, ending at a location of high reward, marked by the &lt;/span&gt;&lt;span
class=ArialUnicodeMS7&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;G&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. In this example the values were all initially 0, and all rewards
were zero except for a positive reward at &lt;/span&gt;&lt;span class=ArialUnicodeMS7&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;G&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. The arrows
in the other two panels show which action values were strengthened as a result
of this path by one-step and n-step Sarsa methods. The one-step method
strengthens only the last action of the sequence of actions that led to the
high reward, whereas the n-step method strengthens the last n actions of the
sequence, so that much more is learned from the one episode.&lt;/span&gt;&lt;/p&gt;

&lt;p class=5c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l0 level1 lfo26;
tab-stops:36.25pt 36.25pt;background:transparent&#39;&gt;&lt;a name=bookmark100&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;7.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;n-step Off-policy Learning by
Importance Sampling&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Recall that off-policy learning is learning the value function for
one policy, &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, while following
another policy, &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;b&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. Often, &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;is the greedy policy for the current action- value-function
estimate, and &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;b &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is a more exploratory
policy, perhaps &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-greedy. In order to
use the data from &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;b &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;we must take into
account the difference between the two policies, using their relative
probability of taking the actions that were taken (see Section 5.5). In &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;-step methods, returns are constructed over &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;steps, so we are interested in the relative probability of just
those &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;actions. For example, to make a simple
off-policy version of &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-step TD, the update
for time &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(actually made at time
&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) can simply
be weighted by &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;pt&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;:&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=65pt&gt;&lt;span lang=EN-US
style=&#39;font-size:6.5pt&#39;&gt;_&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;:&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.3pt;
margin-left:29.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
mso-list:l74 level1 lfo27;tab-stops:315.8pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;\A1\B0St&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;K&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangd&gt;&lt;span
lang=EN-US style=&#39;font-size:6.5pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang9&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;) + &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;a&lt;sub&gt;P&lt;/sub&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;:&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangd&gt;&lt;span lang=EN-US
style=&#39;font-size:6.5pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang9&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt; [&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;Gt&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;:&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;n \A1\AA Vt&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;+&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batangd&gt;&lt;span lang=EN-US style=&#39;font-size:6.5pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang9&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;)]&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;,&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang9&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;&amp;lt; &lt;/span&gt;&lt;/span&gt;&lt;span class=212pt&gt;&lt;span
lang=EN-US&gt;t&amp;lt;T,&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(7.7)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;pt&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;:&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=65pt&gt;&lt;span lang=EN-US
style=&#39;font-size:6.5pt&#39;&gt;_&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, called the &lt;span
class=aff7&gt;importance sampling ratio,&lt;/span&gt; is the relative probability under
the two policies of taking the &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;actions
from &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt&#39;&gt;At &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;to &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=65pt&gt;&lt;span lang=EN-US style=&#39;font-size:6.5pt&#39;&gt;_&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=65pt&gt;&lt;span lang=EN-US
style=&#39;font-size:6.5pt&#39;&gt;_&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; (cf. Eq. 5.3):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:59.0pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;min(&lt;/span&gt;&lt;/sup&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;h,T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=65pt&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:6.5pt&#39;&gt;-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;1)&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span class=ArialUnicodeMSd&gt;&lt;sub&gt;&lt;span
lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;rA&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSd&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt; ,&lt;sub&gt;Q&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=65pt&gt;&lt;span lang=EN-US style=&#39;font-size:6.5pt&#39;&gt; %&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:29.0pt;margin-bottom:.0001pt;line-height:9.5pt;mso-line-height-rule:
exactly;tab-stops:70.75pt right 156.7pt;background:transparent&#39;&gt;&lt;span
class=213&gt;&lt;sub&gt;&lt;span lang=EN-US&gt;P&lt;/span&gt;&lt;/sub&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;=&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=215&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;n&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;k &lt;sup&gt;|S&lt;/sup&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.75pt;
margin-left:29.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
70.75pt right 156.7pt 401.25pt;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;pt&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;:&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;h&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;=&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sub&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/sub&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&amp;#8226;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang9&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; )&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.55pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;For example, if any one of the actions would never be taken by &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(i.e., &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;A^|S^&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) = 0) then the &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-step return
should be given zero weight and be totally ignored. On the other hand, if by
chance an action is taken that &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;would take
with much greater probability than &lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;b &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;does, then
this will increase the weight that would otherwise be given to the return. This
makes sense because that action is characteristic of &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(and therefore we want to learn about it) but is selected rarely by &lt;/span&gt;&lt;span
class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;b &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;and thus rarely appears in the data. To make up for this we have to
over-weight it when it does&lt;br clear=all style=&#39;page-break-before:always&#39;&gt;
occur. Note that if the two policies are actually the same (the on-policy case)
then the importance sampling ratio is always 1. Thus our new update (7.7)
generalizes and can completely replace our earlier n-step TD update. Similarly,
our previous n-step Sarsa update can be completely replaced by a simple
off-policy form:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:6.65pt;text-align:justify;text-justify:
inter-ideograph;text-indent:21.0pt;line-height:11.5pt;mso-line-height-rule:
exactly;tab-stops:right 394.6pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Qt+n&lt;sup&gt;(S&lt;/sup&gt;t,
&lt;sup&gt;A&lt;/sup&gt;t&lt;sup&gt;)&lt;/sup&gt; = &lt;sup&gt;Q&lt;/sup&gt;t+n-&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(S&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t, &lt;sup&gt;A&lt;/sup&gt;t&lt;sup&gt;)&lt;/sup&gt; + &lt;sup&gt;ap&lt;/sup&gt;t+&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+n&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;-1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;sup&gt;[G&lt;/sup&gt;t&lt;/span&gt;&lt;span class=MingLiUff0&gt;&lt;span style=&#39;font-size:
11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+n &lt;sup&gt;\A1\AA Q&lt;/sup&gt;t+n-&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;(S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t, &lt;sup&gt;A&lt;/sup&gt;t&lt;sup&gt;)] ,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(7&lt;/sup&gt;.&lt;sup&gt;9)&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:15.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;for 0 &amp;lt; t &amp;lt; T. Note the importance sampling ratio here starts
one step later than for n-step TD (above). This is because here we are updating
a state-action pair. We do not have to care how likely we were to select the
action; now that we have selected it we want to learn fully from what happens,
with importance sampling only for subsequent actions. Pseudocode for the full
algorithm is shown in the box.&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-bottom:7.75pt;text-indent:21.0pt;line-height:9.5pt;
mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span class=512&gt;&lt;span
lang=EN-US&gt;Off-policy &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang0&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=512&gt;&lt;span lang=EN-US&gt;-step
Sarsa for estimating &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang1&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang0&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt; ^ &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;q\A1\B1&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang0&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=512&gt;&lt;span
lang=EN-US&gt;or &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang1&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang0&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt; ^ &lt;/span&gt;&lt;/span&gt;&lt;span class=512&gt;&lt;span
lang=EN-US&gt;for a given &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang0&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:40.0pt;margin-bottom:0cm;
margin-left:21.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Input: an
arbitrary behavior policy &lt;span class=afb&gt;b&lt;/span&gt; such that b(a&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;s) &amp;gt; 0, &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;s &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;S, a &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span class=afb&gt;&lt;span lang=EN-US&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Initialize Q(s, a) arbitrarily, &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;s &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;S, a &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:21.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize n to be e-greedy with respect to Q, or
as a fixed given policy&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:21.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Parameters: step size a &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(0,1],
small e &amp;gt; 0, a positive integer n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:6.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:21.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;All store and access
operations (for St, At, and Rt) can take their index mod n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:21.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat (for each episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:187.0pt;margin-bottom:0cm;
margin-left:21.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
and store So = terminal Select and store an action Ao &lt;/span&gt;&lt;span
class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;b(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^|&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;So)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:21.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;T &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:21.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;For t = 0,1, &lt;span class=1pt4&gt;2,...:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If t &amp;lt;
T, then:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:59.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Take action At&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:0cm;
margin-left:59.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Observe and store the next reward as Rt+i and the
next state as St+i If St+i is terminal, then:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:285.0pt;margin-bottom:0cm;
margin-left:59.0pt;margin-bottom:.0001pt;text-indent:14.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;T &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t + 1 else:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:40.0pt;margin-bottom:0cm;
margin-left:44.0pt;margin-bottom:.0001pt;text-indent:29.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;tab-stops:124.65pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Select and store an action At+i &lt;/span&gt;&lt;span class=MingLiUfb&gt;&lt;span
style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;b(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^|&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;St+i) &lt;/span&gt;&lt;span class=12pt1&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;t \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;n + &lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;(&lt;/span&gt;&lt;span class=12pt1&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is the
time whose estimate is being updated)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If &lt;/span&gt;&lt;span
class=12pt1&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t &amp;gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;0:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:59.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:338.35pt right 394.6pt;background:transparent&#39;&gt;&lt;span class=aff6&gt;&lt;span
lang=EN-US&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; , i-r&lt;sup&gt;min&lt;/sup&gt;(&lt;sup&gt;T&lt;/sup&gt; +&lt;sup&gt;n-1,T-1&lt;/sup&gt;)
&lt;sup&gt;n&lt;/sup&gt;(&lt;sup&gt;A&lt;/sup&gt;i&lt;sup&gt;|S&lt;/sup&gt;i)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(p&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:59.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;
tab-stops:162.9pt 338.35pt;background:transparent&#39;&gt;&lt;span class=afb&gt;&lt;span
lang=EN-US&gt;P&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\81A\81A&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;i=T&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;b(Ai|Si)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(&lt;/sup&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;P&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;+&lt;sup&gt;1&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;\A3\BA&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;+&lt;sup&gt;n-i)&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:59.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=12pt1&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;g\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;span class=-2pt&gt;&lt;span lang=EN-US&gt;E&lt;/span&gt;\A3\BA&lt;span
lang=EN-US&gt;=n&lt;/span&gt;&lt;/span&gt;&lt;span class=-1pt&gt;&lt;span lang=EN-US&gt; +&lt;sup&gt;T&lt;/sup&gt;&lt;sub&gt;1&lt;/sub&gt;+&lt;sup&gt;n,T)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span class=12pt1&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;y
&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;i-T-i&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;Ri&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:59.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;
tab-stops:center 263.6pt left 338.35pt;background:transparent&#39;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;If &lt;/span&gt;&lt;/sup&gt;&lt;span class=12pt1&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=12pt1&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+ &lt;sup&gt;n&lt;/sup&gt;
&amp;lt; &lt;sup&gt;T, then: G &lt;/sup&gt;&lt;/span&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; + Y&lt;sup&gt;nQ(S&lt;/sup&gt;T +n,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+n&lt;sup&gt;)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/sup&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;span class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt;
mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t +n&lt;sup&gt;)&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:59.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.2pt;mso-line-height-rule:exactly;
tab-stops:226.3pt center 263.6pt;background:transparent&#39;&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t, &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t) &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA
Q&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t, &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t) + ap [G &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\A1\AA&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t,&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t)]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:0cm;
margin-left:21.0pt;margin-bottom:.0001pt;text-indent:37.0pt;line-height:13.2pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If n is
being learned, then ensure that n(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;-|&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;ST) is e-greedy wrt &lt;span
class=afb&gt;Q &lt;/span&gt;Until &lt;/span&gt;&lt;span class=12pt1&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= T \A1\AA 1&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The off-policy version of n-step Expected Sarsa would use the same
update as above for Sarsa except that the importance sampling ratio would have
an additional one less factor in it. That is, the above equation would use pt+i&lt;/span&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+&lt;sub&gt;n-&lt;/sub&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; instead of &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;pt&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+i&lt;/span&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;sub&gt;-&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;i, and of course it would use the Expected Sarsa version of the &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;-step return (7.6). This is because in Expected Sarsa all possible
actions are taken into account in the last state; the one actually taken has no
effect and does not have to be corrected for.&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l82 level1 lfo28;tab-stops:34.9pt;background:transparent&#39;&gt;&lt;a
name=bookmark101&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;7.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;*Per-reward Off-policy Methods&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The multi-step off-policy methods presented in the previous section
are very simple and conceptually clear, but are probably not the most
efficient. A more sophisticated approach would use per-reward importance
sampling ideas such as were introduced in Section 5.9. To understand this
approach, first note that the ordinary &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-step
return (7.1), like all returns, can be written recursively:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.8pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t:h = &lt;/span&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+i + &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;lG&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+i:h&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Now consider the effect of following a behavior policy &lt;span
class=afb&gt;b&lt;/span&gt; = &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;that is not the same
as the target policy &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. All of the resulting
experience, including the first reward &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+i and the
next state &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+i must be weighted by the importance sampling ratio for time &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t =&lt;/span&gt;&lt;span class=MingLiUff1&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ū\C6\EF&lt;/span&gt;&lt;/span&gt;&lt;span
class=1pt5&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span
class=1pt4&gt;&lt;span lang=EN-US&gt;.One&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; might be
tempted to simply weight the righthand side of the above equation, but one can
do better. Suppose the action at time &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;would
never be selected by &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, so that &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t is zero. Then a simple weighting would result in the &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;-step return being zero, which could result in high variance when it
was used as a target. Instead, in this more sophisticated approach, one uses an
alternate, &lt;span class=afb&gt;off-policy &lt;/span&gt;definition of the &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;-step return, as&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.5pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:right 400.4pt;
background:transparent&#39;&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;\A3\BA&lt;span
lang=EN-US&gt;h = &lt;/span&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;p&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t &lt;sup&gt;(&lt;/sup&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+i + &lt;/span&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;lG&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+i:h&lt;sup&gt;)&lt;/sup&gt;
+ &lt;/span&gt;&lt;span class=9pt5&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/sup&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\A1\AA p&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;sup&gt;)&lt;/sup&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;V&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t)&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;,&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;t&lt;/sup&gt;
&amp;lt; &lt;sup&gt;h&lt;/sup&gt; &amp;lt; &lt;sup&gt;T&lt;/sup&gt;, &lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(7&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;.&lt;sup&gt;10)&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;where &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t) is some estimate of the value of &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+i, and &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;G&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;\A3\BA&lt;span lang=EN-US&gt;t &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t). (We are being a little vague about exactly with time step\A1\AFs
estimate is used for &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t) because the choice will depend on the practicality of specific
algorithms.) Now, if &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t is zero, instead of
the target being zero and causing the estimate to shrink, the target is the
same as the estimate and causes no change. The importance sampling ratio being
zero means we should ignore the sample, so leaving the estimate unchanged seems
an appropriate outcome. Notice that the second, additional term does not change
the expected update; the importance sampling ratio has expected value one and
is uncorrelated with the estimate, so the expected value of the second term is
zero. Also note that the off-policy definition (7.10) is a strict
generalization of the earlier on-policy definition of the &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;-step return (7.1), as the two are identical in the on-policy case,
in which &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t is always &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:11.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For a
conventional &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;-step method, the learning rule to use in conjunction with&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l31 level1 lfo29;
tab-stops:34.9pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;(7.10)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;is the &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;-step TD update (7.2), which has no explicit importance sampling
ratios other than those embedded in &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;G&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. In this case, the
approximate value function is that at time index &lt;span class=afb&gt;h&lt;/span&gt; &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; = &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;n \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 400.4pt;background:transparent&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span
lang=EN-US&gt;Exercise 7.4 &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Write the pseudocode for
the off-policy state-value prediction algo&amp;shy;rithm described above.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection167&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.15pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;For action
values, the off-policy definition of the n-step return corresponds to Ex&amp;shy;pected
Sarsa (there does not seem to be one that corresponds to ordinary Sarsa). It is
a little different because the first action does not play a role in the
importance sampling. We are learning the value of that action and it does not
matter if it was unlikely or even impossible under the target policy. It has
been taken and now full unit weight must be given to the reward and state that
follows it. Importance sam&amp;shy;pling will apply only to the actions that follow it.
The off-policy recursive definition of the n-step return for action values is&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.7pt;
margin-left:28.0pt;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:
right 398.75pt;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU5&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;h &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;= &lt;sup&gt;R&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;+ &lt;sup&gt;Y&lt;/sup&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;p&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span class=21MingLiU5&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;h &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batangf&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;(1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt; \A1\AA p&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t-&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;Q&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(7.&lt;sup&gt;11&lt;/sup&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;for t, h such that t &amp;lt; h &amp;lt;
T, with G&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=21MingLiU5&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t =&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=218&gt;&lt;span lang=EN-US&gt;(Q&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;== E&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;n(a|S&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;)Q&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;sub&gt;-&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;(S&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;, a). A complete n- step off-policy action-value prediction method
would combine (7.11) and (7.5) using the estimate for time step h \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batangf&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt; = t + n \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 398.75pt;background:transparent&#39;&gt;&lt;span class=21ArialUnicodeMS0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Exercise 7.5 &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;Write the pseudocode for the off-policy action-value prediction algo&amp;shy;rithm
described immediately above.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 398.75pt;background:transparent&#39;&gt;&lt;span class=21ArialUnicodeMS0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Exercise 7.6 &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;Show that the general (off-policy) version of the n-step return
(7.10) can still be written exactly and compactly as the sum of state-based TD
errors (6.5) if the approximate state value function does not change.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:2.8pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 398.75pt;background:transparent&#39;&gt;&lt;span class=21ArialUnicodeMS0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Exercise 7.7 &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;Repeat the above exercise for the action version of the off-policy
n-step return (7.11) and the Expected Sarsa TD error (the quantity in brackets
in Equation 6.9).&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.2pt;
margin-left:0cm;line-height:13.7pt;mso-line-height-rule:exactly;tab-stops:right 398.75pt;
background:transparent&#39;&gt;&lt;span class=21ArialUnicodeMS0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;Exercise 7.8 (programming) &lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;Devise a small off-policy prediction problem and use
it to show that the off-policy learning algorithm using (7.10) and (7.2) is
more data efficient than the simpler algorithm using (7.1) and (7.7).&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.35pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;The importance
sampling that we have used in this section, the previous section, and in
Chapter 5 enables off-policy learning, but at the cost of increasing the
variance of the updates. The high variance forces us to use a small step-size
parameter, resulting in slow learning. It is probably inevitable that off-policy
training is slower than on-policy training\A1\AAafter all, the data is less relevant
to what you are trying to learn. However, it is probably also true that the
methods we have presented here can be improved on. One possibility is to
rapidly adapt the step sizes to the observed variance, as in the Autostep
method (Mahmood et al, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;2012&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;).
Another promising approach is the invariant updates of Karampatziakis and
Langford (2010) as extended to TD by Tian (2017). The usage technique of
Mahmood (2017; Mahmood and Sutton, 2015) is probably also part of the solution.
In the next section we consider an off-policy learning method that does not use
importance sampling.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:.1pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l82 level1 lfo28;tab-stops:36.95pt;background:transparent&#39;&gt;&lt;a
name=bookmark102&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;7.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Off-policy Learning Without
Importance Sampling:&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=109 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
12.35pt;margin-left:37.0pt;text-align:left;text-indent:0cm;line-height:13.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;a name=bookmark103&gt;&lt;span
lang=EN-US&gt;The n-step Tree Backup Algorithm&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.7pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;Is off-policy
learning possible without importance sampling? Q-learning and Ex&amp;shy;pected Sarsa
from Chapter &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt; do
this for the one-step case, but is there a correspond&amp;shy;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection168&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.7pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=ac&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;ing multi-step algorithm? In this section we present
just such an &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=ac&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;-step
method, called the &lt;/span&gt;&lt;/span&gt;&lt;span class=afb&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;tree-backup algorithm&lt;/span&gt;&lt;/span&gt;&lt;span class=ac&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=40ptExact&gt;&lt;span
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;The idea of the algorithm is suggested by the 3-step
tree-backup diagram shown to the right. Down the central spine and labeled in
the figure are three sample states and rewards, and two sample actions.&lt;/span&gt;&lt;/p&gt;

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    style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_81&#34; o:spid=&#34;_x0000_i1038&#34;
     type=&#34;#_x0000_t75&#34; alt=&#34;image57&#34; style=&#39;width:48pt;height:135.75pt;
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    &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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    lang=EN-US style=&#39;font-size:7.0pt;letter-spacing:0pt&#39;&gt;the 3-step tree
    backup&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;These are the random variables representing the
events occurring after the initial state-action pair &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;St, At&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.
Hanging off to the sides of each state are the actions that were &lt;span
class=afb&gt;not&lt;/span&gt; selected. (For the last state, all the actions are
considered to have not (yet) been selected.) Because we have no sample data for
the unselected actions, we bootstrap and use the estimates of their values in
forming the target for the update. This slightly extends the idea of a backup
diagram. So far we have always updated the estimated value of the node at the
top of the diagram toward a target combining the rewards along the way
(appropriately discounted) and the estimated values of the nodes at the bottom.
In the tree backup, the target includes all these things &lt;span class=afb&gt;plus&lt;/span&gt;
the estimated values of the dangling action nodes hanging off the sides, at all
levels.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:2.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;This is why it is called a &lt;span
class=afb&gt;tree backup&lt;/span&gt;; it is a backup from the entire tree of of
estimated action values.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:2.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;More precisely, the backup is
from the estimated action values of the &lt;span class=afb&gt;leaf nodes &lt;/span&gt;of
the tree. The action nodes in the interior, corresponding to the actual action
taken, do not participate. Each leaf node is meant to contribute to the target
with a weight in proportion to its probability of occurring under the target
policy &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. Thus a first-level action &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;a &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;contributes
with a weight of &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;a|St&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;), except
that that the action actually taken,&lt;/span&gt;&lt;span class=MingLiUff2&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\D2\E6&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, does not
contribute at all. Its probability, &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;(&lt;/span&gt;&lt;span class=MingLiUff2&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\D2\E6&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;|St&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;), is used to weight all the second-level action values. Thus, each
non-selected second-level action &lt;/span&gt;&lt;span class=ArialUnicodeMSf&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;d&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;contributes
with weight &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;At&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;|St&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;Jn&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;C&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;a&#39;ISt&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+a). Each third-level action contributes with weight &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;At&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;|St&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;At&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;|St&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;a&amp;quot;|St&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+3&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;), and so on. It is as if each arrow to an action node in the
diagram is weighted by its probability of that action being selected under the
target policy, and that weight applies not only to that action but to the whole
tree below it.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:2.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;We can think of the tree
backup as an alternating sequence of sample transitions (from each action to
the subsequent state) and full backups (from each state we consider all the
possible actions with their probability of occuring). The sample transitions
also have various probabilities of occurring, but these need not be taken into
account because they are given the action selection and thus indepedent of the
policy; they will introduce variance, but not bias.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:30.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The one-step return (target) of the tree-backup algorithm is the
same as that of Expected Sarsa. It can be written&lt;/span&gt;&lt;/p&gt;

&lt;p class=98 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:.1pt;
margin-left:28.0pt;line-height:9.5pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark104&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t:t&lt;/span&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark104&#39;&gt;&lt;span class=99pt&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = &lt;sup&gt;R&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark104&#39;&gt;&lt;span class=99pt&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + 7 I^&lt;sup&gt;(a&lt;/sup&gt;l&lt;sup&gt;S&lt;/sup&gt;t+&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark104&#39;&gt;&lt;span class=99pt&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;)Q&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;sup&gt;(S&lt;/sup&gt;t+&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark104&#39;&gt;&lt;span
class=99pt&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, &lt;sup&gt;a)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.8pt;
margin-left:120.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

&lt;p class=98 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:60.0pt;margin-bottom:.0001pt;line-height:9.5pt;mso-line-height-rule:
exactly;mso-pagination:lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark105&gt;&lt;span lang=EN-US&gt;=^t + Qt-&lt;/span&gt;&lt;/a&gt;&lt;span style=&#39;mso-bookmark:
bookmark105&#39;&gt;&lt;span class=99pt&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(St, At),&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection169&gt;

&lt;p class=2f9 align=left style=&#39;margin-bottom:10.25pt;text-align:left;
line-height:12.0pt;mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span
class=295pt1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
class=20pt&gt;&lt;span lang=EN-US&gt;-step Tree Backup for estimating &lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; ^ q&lt;/span&gt;&lt;/span&gt;&lt;span
class=20pt&gt;&lt;span lang=EN-US&gt;^, or &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; ^ q&lt;/span&gt;&lt;/span&gt;&lt;span class=20pt&gt;&lt;span
lang=EN-US&gt;^ for a given &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize Q(s, a)
arbitrarily, &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;s &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;G
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;S, a &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:34.0pt;margin-bottom:6.0pt;
margin-left:0cm;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize n to be e-greedy with
respect to Q, or as a fixed given policy Parameters: step size a &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(0,1], small e &amp;gt; 0, a positive integer n All store and access
operations can take their index mod n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat (for each episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:193.0pt;margin-bottom:0cm;
margin-left:14.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
and store So = terminal Select and store an action Ao &lt;/span&gt;&lt;span
class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;n(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^|&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;So)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:193.0pt;margin-bottom:0cm;
margin-left:14.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Store
Q(So, Ao) as Qo T &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;\A1\AA ^&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:14.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For t =
0, 1, 2, . . . :&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:43.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:-15.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If t &amp;lt; T:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:14.0pt;text-indent:29.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Take
action At&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:15.0pt;margin-bottom:0cm;
margin-left:43.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Observe
the next reward R; observe and store the next state as St+i If St+i is terminal:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:245.0pt;margin-bottom:0cm;
margin-left:43.0pt;margin-bottom:.0001pt;text-indent:15.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;T &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t + 1 Store R &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Qt as &amp;amp; else:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:53.0pt;margin-bottom:0cm;
margin-left:28.0pt;margin-bottom:.0001pt;text-indent:29.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;tab-stops:107.45pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Store R + &lt;span class=afb&gt;yJ2a&lt;/span&gt; n(a&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;St+i)Q(St+i,
a) &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Qt as ^t Select arbitrarily and store an action as At+i Store
Q(St+i, At+i) as Qt+i Store n(At+i&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;St+i) as nt+i &lt;/span&gt;&lt;span
class=12pt1&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;n + &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;span class=12pt1&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is the
time whose estimate is being updated)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:322.0pt;margin-bottom:0cm;
margin-left:43.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:-15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If &lt;/span&gt;&lt;span class=12pt1&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t &amp;gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;0: &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1 &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;G &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA
Q&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:14.0pt;text-indent:29.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For &lt;span
class=afb&gt;k&lt;/span&gt; = &lt;/span&gt;&lt;span class=12pt1&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;t, &lt;/span&gt;&lt;/span&gt;&lt;span class=1pt4&gt;&lt;span lang=EN-US&gt;...,&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; min(T + n &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;1, T &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;1):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:139.0pt;margin-bottom:0cm;
margin-left:43.0pt;margin-bottom:.0001pt;text-indent:15.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;G &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;G + &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e
&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;֪ &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Y&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;nk+i &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t, &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t) &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA
Q&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t, &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t) + a [G &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\A1\AA Q&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t, A)]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:15.0pt;margin-bottom:0cm;
margin-left:14.0pt;margin-bottom:.0001pt;text-indent:29.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If n is
being learned, then ensure that n(a&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;ST) is e-greedy wrt &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;Q(S&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t, &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;&amp;#8226;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) Until &lt;/span&gt;&lt;span class=12pt1&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= T \A1\AA 1&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection170&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:11.55pt;
margin-left:1.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;where &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;^t &lt;/span&gt;&lt;/span&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt;is a modified form of the TD error from Expected
Sarsa:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;
tab-stops:right 398.55pt;background:transparent&#39;&gt;&lt;a name=bookmark106&gt;&lt;span
lang=EN-US&gt;^t &lt;/span&gt;&lt;/a&gt;&lt;span style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;=&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span class=MingLiUff0&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;˽ʮ&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span class=MingLiUff0&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;\B7\A6&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:
bookmark106&#39;&gt;&lt;span class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\A1\A3&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C3\F1ʮ&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\CB\C6&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:
bookmark106&#39;&gt;&lt;span class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C3\F1ʮ&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;1,4 &lt;/span&gt;&lt;span lang=EN-US&gt;\A1\AA Qt&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:
bookmark106&#39;&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;_&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;St, At&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark106&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;(7.12)&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
7.25pt;margin-left:100.0pt;text-align:left;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a name=bookmark107&gt;&lt;span class=44&gt;&lt;span
lang=EN-US&gt;a&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:44.0pt;margin-bottom:13.15pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;With these, the general &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt;-step returns of the tree-backup algorithm can be
defined recursively, and then as a sum of TD errors:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:11.8pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:240.15pt;
background:transparent&#39;&gt;&lt;a name=bookmark108&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t:t+n &lt;/span&gt;&lt;/a&gt;&lt;span style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;Q&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;, a&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;+
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span class=9pt5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span class=MingLiUff0&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;:t+n &lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark108&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;(7&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;.&lt;sup&gt;13)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:17.0pt;margin-bottom:0cm;
margin-left:60.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:17.05pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;a name=bookmark109&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;=&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=MingLiUff0&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;\BA\CD&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Qt&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;St, At&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;) &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=MingLiUff0&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;At&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Qt&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;St+&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, At&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;)
+ &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=9pt5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=MingLiUff0&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;At&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Gt+&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;:t+n &lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Qt&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t, &lt;sup&gt;A&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;^t &lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;+
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=9pt5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;sup&gt;G&lt;/sup&gt;t+&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;:t+n &lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\A1\AA&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:
bookmark109&#39;&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Qt&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, &lt;sup&gt;A&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Qt&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t, &lt;sup&gt;A&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;^t &lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;+
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=MingLiUff0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:11.5pt;mso-ansi-language:
EN-US&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;Sf&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Jt&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;+
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=MingLiUff0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:11.5pt;mso-ansi-language:
EN-US&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Jt&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark109&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;+&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.3pt;
margin-left:143.0pt;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:
right 247.1pt;background:transparent&#39;&gt;&lt;!--[if supportFields]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-element:field-begin&#39;&gt;&lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;TOC \o &amp;quot;1-5&amp;quot; \h \z &lt;span
style=&#39;mso-element:field-separator&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;span lang=EN-US&gt;&lt;a
href=&#34;#bookmark110&#34; title=&#34;Current Document&#34;&gt;&lt;span style=&#39;mso-bookmark:bookmark110&#39;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;min(t+n&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark110&#39;&gt;&lt;span class=12pt2&gt;&lt;span style=&#39;font-size:12.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark110&#39;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;1,T &lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark110&#39;&gt;&lt;span
class=12pt2&gt;&lt;span style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark110&#39;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;1)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;span
class=aff1&gt;k&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;![if !supportNestedAnchors]&gt;&lt;a
name=bookmark110&gt;&lt;/a&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.3pt;
margin-left:60.0pt;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:
164.65pt;background:transparent&#39;&gt;&lt;a name=bookmark111&gt;&lt;span
class=ArialUnicodeMSf0&gt;&lt;span lang=EN-US&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Qt&lt;/span&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark111&#39;&gt;&lt;span class=12pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark111&#39;&gt;&lt;span class=ArialUnicodeMSf0&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;St,At&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark111&#39;&gt;&lt;span
class=ArialUnicodeMSf0&gt;&lt;span lang=EN-US&gt;)+&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;E &lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark111&#39;&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\B6&lt;/span&gt;&lt;span lang=EN-US&gt;n 7n&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark111&#39;&gt;&lt;span class=ArialUnicodeMSf0&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Ai&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark111&#39;&gt;&lt;span
class=12pt2&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Si&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark111&#39;&gt;&lt;span
class=ArialUnicodeMSf0&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.25pt;
margin-left:169.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
right 247.1pt;background:transparent&#39;&gt;&lt;a name=bookmark112&gt;&lt;span lang=EN-US&gt;k=t&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;i=i+1&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=6d style=&#39;margin-top:0cm;margin-right:44.0pt;margin-bottom:13.15pt;
margin-left:1.0pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;under the usual
convention that a product of zero factors is 1. This target is then used with
the usual action-value update rule from &lt;/span&gt;&lt;span class=6Batang&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-step
Sarsa:&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.25pt;
margin-left:28.0pt;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:
right 398.55pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark113&#34;
title=&#34;Current Document&#34;&gt;&lt;span style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Qt+n&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span class=ArialUnicodeMSf0&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;St, At&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span
class=ArialUnicodeMSf0&gt;) = &lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Qt+n&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span class=12pt2&gt;&lt;span style=&#39;font-size:12.0pt&#39;&gt;\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span
class=ArialUnicodeMSf0&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;St, At&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span class=ArialUnicodeMSf0&gt;) + &lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;a &lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span
class=ArialUnicodeMSf0&gt;[&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Gt:t+n &lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span class=12pt2&gt;&lt;span style=&#39;font-size:12.0pt&#39;&gt;\A1\AA
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;Qt+n&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span class=12pt2&gt;&lt;span style=&#39;font-size:12.0pt&#39;&gt;\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span
class=ArialUnicodeMSf0&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;St, At&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span class=ArialUnicodeMSf0&gt;)]&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span style=&#39;color:black;text-decoration:none;
text-underline:none&#39;&gt;,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark113&#39;&gt;&lt;span class=ArialUnicodeMSf0&gt;(7.5)&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;![if !supportNestedAnchors]&gt;&lt;a
name=bookmark113&gt;&lt;/a&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;!--[if supportFields]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-element:field-end&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;while the
values of all other state-action pairs remain unchanged, &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;Qt+n&lt;/span&gt;&lt;/span&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;s, a&lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;)=&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:44.0pt;margin-bottom:19.75pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;Qt+n&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang3&gt;&lt;sub&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;\A1\AA&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
class=51Batang4&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;s,a&lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang3&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;s, a &lt;/span&gt;&lt;/span&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt;such that &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;St &lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;or
&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;a
&lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;At&lt;/span&gt;&lt;/span&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt;. Pseudocode for this algorithm is shown in the box
on the previous page.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.15pt;
margin-left:1.0pt;text-indent:0cm;line-height:15.0pt;mso-line-height-rule:exactly;
mso-list:l82 level1 lfo28;tab-stops:37.95pt;background:transparent&#39;&gt;&lt;a
name=bookmark114&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;7.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;*A Unifying Algorithm: n-step &lt;/span&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark114&#39;&gt;&lt;span class=10Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:15.0pt;font-weight:normal&#39;&gt;Q(a)&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:44.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;So far in this chapter we have
considered three different action-value backups, cor&amp;shy;responding to the first
three backup diagrams shown in Figure 7.5. n-step Sarsa has all sampled
transitions, the tree-backup algorithm has all state-to-action transitions
fully branched without sampling, and the n-step Expected Sarsa backup has all
sam&amp;shy;ple transitions except for the last state-to-action ones, which are fully
branched with an expected value. To what extent can these algorithms be
unified?&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:44.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;One idea for
unification is suggested by the fourth backup diagram in Figure 7.5. This is
the idea that one might decide on a step-by-step basis whether one wanted to
take the action as a sample, as in Sarsa, or consider the expectation over all
actions instead, as in the tree backup. Then, if one chose always to sample,
one would obtain Sarsa, whereas if one chose never to sample, one would get the
tree-backup algorithm. Expected Sarsa would be the case where one chose to
sample for all steps except the last one. And of course there would be many
other possibilities, as suggested by the last diagram in the figure. To
increase the possibilities even further we can consider a continuous variation
between sampling and expectation. Let at G [0,1] denote the degree of sampling
on step t, with &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt; = &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook0&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;
denoting full sampling and &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt; = &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook0&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;
denoting a pure expectation with no sampling. The random variable at might be
set as a&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:204.95pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=273 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=273 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:204.95pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_23&#34; o:spid=&#34;_x0000_i1100&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image58&#34;
   style=&#39;width:281.25pt;height:204.75pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image059.png&#34;
    o:title=&#34;image58&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=263 style=&#39;background:transparent;mso-element:frame;mso-element-frame-height:
  204.95pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span lang=EN-US&gt;Figure 7.5: The three kinds of n-step action-value
  backups considered so far in this chapter (4-step case) plus a fourth kind of
  backup that unifies them all. The \A1\AEp\A1\AFs indicate half transitions on which
  importance sampling is required in the off-policy case. The fourth kind of
  backup unifies all the others by choosing on a state-by-state basis whether
  to sample (at = &lt;/span&gt;&lt;span class=26CenturySchoolbook&gt;&lt;span lang=EN-US
  style=&#39;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) or not (at = &lt;/span&gt;&lt;span
  class=26CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
  lang=EN-US&gt;).&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:26.95pt;margin-right:1.0pt;margin-bottom:3.2pt;
margin-left:1.0pt;background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;function
of the state, action, or state-action pair at time t. We call this proposed new
algorithm n-step Q(a).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:22.15pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;Now let us develop the equations
of n-step Q(a). First note that the n-step return of Sarsa (7.4) can be written
in terms of its own pure-sample-based TD error:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.75pt;
margin-left:111.0pt;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;min(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n-&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;i&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;,T
-&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;1)&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:176.2pt;background:
transparent&#39;&gt;&lt;span class=20pt0&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU5&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
class=20pt0&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+&lt;/span&gt;&lt;/span&gt;&lt;span class=20pt0&gt;&lt;span
lang=EN-US&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=20pt0&gt;&lt;span lang=EN-US&gt;Qt-&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=20pt0&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t, &lt;sup&gt;A&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;)+&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=20pt0&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;Y&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;^ &lt;sup&gt;t &lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;[&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=20pt0&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
class=20pt0&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;lQ&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=20pt0&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=20pt0&gt;&lt;span lang=EN-US&gt;, &lt;sup&gt;A&lt;/sup&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;) &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=20pt0&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;\A1\AA&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; Qfc-&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=20pt0&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;fc, &lt;sup&gt;A&lt;/sup&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;)]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
18.55pt;margin-left:137.0pt;text-align:left;line-height:12.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=20pt0&gt;&lt;span lang=EN-US&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span
class=20pt0&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:25.35pt;
margin-left:1.0pt;background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;This
suggests that we may be able to cover both cases if we generalize the TD error
to slide with &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang3&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;at &lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;from its expectation to its sampling form:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=8c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:21.9pt;
margin-left:28.0pt;line-height:12.0pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;tab-stops:right 400.0pt;background:transparent&#39;&gt;&lt;a
name=bookmark115&gt;&lt;span lang=EN-US&gt;^t = &lt;sup&gt;R&lt;/sup&gt;t+i + &lt;/span&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark115&#39;&gt;&lt;span class=89pt&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;[&lt;sup&gt;a&lt;/sup&gt;t+iQt&lt;sup&gt;(S&lt;/sup&gt;t+i,
&lt;sup&gt;A&lt;/sup&gt;t+i&lt;sup&gt;)&lt;/sup&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark115&#39;&gt;&lt;span
class=89pt&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark115&#39;&gt;&lt;span
class=812pt&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=81pt&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+it+i]&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark115&#39;&gt;&lt;span
class=812pt&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark115&#39;&gt;&lt;span class=812pt&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Qt&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark115&#39;&gt;&lt;span class=812pt&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;i&lt;sup&gt;(S&lt;/sup&gt;t, &lt;sup&gt;A&lt;/sup&gt;t),&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(7&lt;/sup&gt;.&lt;sup&gt;14)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:25.3pt;
margin-left:1.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;with&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=8c style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:9.5pt;mso-line-height-rule:
exactly;mso-pagination:lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;v:shape
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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=51d align=left style=&#39;margin-left:5.0pt;text-align:left;
    line-height:9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=510ptExact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:
    0pt&#39;&gt;(7.15)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;a name=bookmark116&gt;&lt;span lang=EN-US&gt;Qt == ^n(a|St)Qt-i(St,a),&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection171&gt;

&lt;p class=2f9 style=&#39;margin-bottom:7.6pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=20pt0&gt;&lt;span lang=EN-US&gt;as usual. Using these we can define the n-step
returns of Q(a) as:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:28.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:16.3pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=20pt0&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU4&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span class=20pt0&gt;&lt;span
lang=EN-US&gt;t+i = &lt;sup&gt;R&lt;/sup&gt;t+i + 7[&lt;sup&gt;a&lt;/sup&gt;t+iQt&lt;sup&gt;(S&lt;/sup&gt;t+i, &lt;sup&gt;A&lt;/sup&gt;t+i&lt;sup&gt;)&lt;/sup&gt;
+ &lt;sup&gt;(1 \A1\AA&lt;/sup&gt; ^t+i&lt;sup&gt;)&lt;/sup&gt;^&lt;sup&gt;Q&lt;/sup&gt;t+i]&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:60.0pt;margin-bottom:.0001pt;text-align:left;line-height:16.3pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=20pt0&gt;&lt;span
lang=EN-US&gt;=A + Qt-i(St, At),&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:28.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:16.3pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=20pt0&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU4&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span class=20pt0&gt;&lt;span
lang=EN-US&gt;t+2 = &lt;sup&gt;R&lt;/sup&gt;t+i + 7[&lt;sup&gt;a&lt;/sup&gt;t+iQt&lt;sup&gt;(S&lt;/sup&gt;t+i, &lt;sup&gt;A&lt;/sup&gt;t+i&lt;sup&gt;)&lt;/sup&gt;
+ &lt;sup&gt;(1 \A1\AA&lt;/sup&gt; ^t+i&lt;sup&gt;)&lt;/sup&gt;^&lt;sup&gt;Q&lt;/sup&gt;t+i]&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:78.0pt;margin-bottom:.0001pt;text-align:left;line-height:16.3pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=20pt0&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;\A1\AAY (1 \A1\AA&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; ^t+i&lt;sup&gt;)n(A&lt;/sup&gt;t+i&lt;sup&gt;|S&lt;/sup&gt;t+i&lt;sup&gt;)Q&lt;/sup&gt;t
&lt;sup&gt;(S&lt;/sup&gt;t+i, &lt;sup&gt;A&lt;/sup&gt;t+i)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:13.0pt;margin-bottom:
0cm;margin-left:78.0pt;margin-bottom:.0001pt;text-align:left;line-height:16.3pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=20pt0&gt;&lt;span
lang=EN-US&gt;+ &lt;sup&gt;Y(1 \A1\AA&lt;/sup&gt; ^t+1&lt;sup&gt;)n(A&lt;/sup&gt;t+1&lt;sup&gt;|S&lt;/sup&gt;t+1&lt;sup&gt;)&lt;/sup&gt;
[&lt;sup&gt;R&lt;/sup&gt;t+2 + &lt;sup&gt;Y&lt;/sup&gt;[^t+2Qt&lt;sup&gt;(S&lt;/sup&gt;t+2, &lt;sup&gt;A&lt;/sup&gt;t+2&lt;sup&gt;)&lt;/sup&gt;
+ &lt;sup&gt;(1 \A1\AA&lt;/sup&gt; Ct+2)01+2]] &lt;sup&gt;\A1\AA&lt;/sup&gt;7&lt;sup&gt;a&lt;/sup&gt;t+1&lt;sup&gt;Q&lt;/sup&gt;t&lt;sup&gt;(S&lt;/sup&gt;t+1,
&lt;sup&gt;A&lt;/sup&gt;t+1)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:78.0pt;margin-bottom:.0001pt;text-align:left;line-height:16.3pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=20pt0&gt;&lt;span
lang=EN-US&gt;+ &lt;sup&gt;Y&lt;/sup&gt;^t+1 [&lt;sup&gt;R&lt;/sup&gt;t+2 + 7[&lt;sup&gt;a&lt;/sup&gt;t+2&lt;sup&gt;Q&lt;/sup&gt;t&lt;sup&gt;(S&lt;/sup&gt;t+2,
&lt;sup&gt;A&lt;/sup&gt;t+2&lt;sup&gt;)&lt;/sup&gt; + &lt;sup&gt;(1 \A1\AA&lt;/sup&gt; ^t+2&lt;sup&gt;)&lt;/sup&gt;^&lt;sup&gt;Q&lt;/sup&gt;t+2]]&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:60.0pt;margin-bottom:.0001pt;text-align:left;line-height:16.3pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=20pt0&gt;&lt;span
lang=EN-US&gt;=Qt-i(St, At) + ^t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:78.0pt;margin-bottom:.0001pt;text-align:left;line-height:16.3pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=20pt0&gt;&lt;span
lang=EN-US&gt;+ Y &lt;/span&gt;&lt;/span&gt;&lt;span class=211pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:11.0pt&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span class=20pt0&gt;&lt;span lang=EN-US&gt; \A1\AA
^t+i)n(At+i|St+i)&lt;/span&gt;&lt;/span&gt;&lt;span class=211pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:11.0pt&#39;&gt;5&lt;/span&gt;&lt;/span&gt;&lt;span class=20pt0&gt;&lt;span lang=EN-US&gt;t+i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
1.8pt;margin-left:78.0pt;text-align:left;line-height:12.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=20pt0&gt;&lt;span lang=EN-US&gt;+ Y^t+i^t+i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:60.0pt;margin-bottom:.0001pt;text-align:left;line-height:12.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=20pt0&gt;&lt;span
lang=EN-US&gt;=Qt-i&lt;sup&gt;(S&lt;/sup&gt;t, &lt;sup&gt;A&lt;/sup&gt;t&lt;sup&gt;)&lt;/sup&gt; + ^t + &lt;sup&gt;Y&lt;/sup&gt;[&lt;sup&gt;(1
\A1\AA&lt;/sup&gt; ^t+i&lt;sup&gt;)n(A&lt;/sup&gt;t+i&lt;sup&gt;|S&lt;/sup&gt;t+i&lt;sup&gt;)&lt;/sup&gt; + ^t+i]^t+i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.95pt;
margin-left:143.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;tab-stops:right 248.05pt;background:transparent&#39;&gt;&lt;span
class=20pt0&gt;&lt;span lang=EN-US&gt;min(t+n-&lt;/span&gt;&lt;/span&gt;&lt;span class=211pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:11.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=20pt0&gt;&lt;span
lang=EN-US&gt;,T -&lt;/span&gt;&lt;/span&gt;&lt;span class=211pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:11.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=20pt0&gt;&lt;span lang=EN-US&gt;)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;k&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:28.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:165.75pt right 219.5pt center 233.7pt left 247.35pt;
background:transparent&#39;&gt;&lt;span class=20pt0&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU4&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
class=20pt0&gt;&lt;span lang=EN-US&gt;t+n = Qt-1&lt;sup&gt;(S&lt;/sup&gt;t&lt;sup&gt;,A&lt;/sup&gt;t&lt;sup&gt;)&lt;/sup&gt;
+&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;^&amp;quot;^&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;^&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;IT&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;Y&lt;/sup&gt;
[&lt;sup&gt;(1 \A1\AA a&lt;/sup&gt;i&lt;sup&gt;)n(A&lt;/sup&gt;i&lt;sup&gt;|S&lt;/sup&gt;i&lt;sup&gt;)&lt;/sup&gt; + ] &amp;#8226; &lt;sup&gt;(7&lt;/sup&gt;.&lt;sup&gt;16)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.75pt;
margin-left:169.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;tab-stops:right 248.05pt;background:transparent&#39;&gt;&lt;span
class=20pt0&gt;&lt;span lang=EN-US&gt;k=t&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;i=t+1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:50.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=20pt0&gt;&lt;span lang=EN-US&gt;Under on-policy training, this return is ready to
be used in an update such as that for n-step Sarsa (&lt;/span&gt;&lt;/span&gt;&lt;span
class=211pt0&gt;&lt;span lang=EN-US style=&#39;font-size:11.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=20pt0&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=211pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:11.0pt&#39;&gt;5&lt;/span&gt;&lt;/span&gt;&lt;span class=20pt0&gt;&lt;span
lang=EN-US&gt;). For the off-policy case we need to take &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span
class=20pt0&gt;&lt;span lang=EN-US&gt; into account in the importance sampling ratio,
which we redefine more generally as&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection172&gt;

&lt;p class=MsoNormal style=&#39;line-height:11.75pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection173&gt;

&lt;p class=4f align=left style=&#39;text-align:left;line-height:12.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=41&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-style:normal&#39;&gt;min(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=412pt&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-style:normal&#39;&gt;h,T-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=41&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-style:normal&#39;&gt;1)&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=41&gt;&lt;span lang=EN-US style=&#39;font-style:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=412pt&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-style:normal&#39;&gt;/ &lt;/span&gt;&lt;/span&gt;&lt;span
class=44&gt;&lt;span lang=EN-US&gt;r A \q \&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:right 142.5pt;
background:transparent&#39;&gt;&lt;v:shape id=&#34;Text_x0020_Box_x0020_563&#34; o:spid=&#34;_x0000_s1462&#34;
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SAM + 1 \A1\AA ak&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=20pt0&gt;&lt;span lang=EN-US&gt;k=t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection174&gt;

&lt;p class=MsoNormal style=&#39;line-height:7.8pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
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&lt;/div&gt;

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&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection175&gt;

&lt;p class=51d align=left style=&#39;margin-right:16.0pt;text-align:left;background:
transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;After this we can then use the
usual general (off-policy) update for n-step Sarsa (7.9). A complete algorithm
is given in the box on the next page.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:#141414;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
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&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection176&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:10.75pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span class=af7&gt;&lt;span
lang=EN-US&gt;Off-policy n-step Q(a) for estimating &lt;/span&gt;&lt;/span&gt;&lt;span
class=afff3&gt;&lt;span lang=EN-US&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span class=af7&gt;&lt;span lang=EN-US&gt; ^
q^, or &lt;/span&gt;&lt;/span&gt;&lt;span class=afff3&gt;&lt;span lang=EN-US&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span
class=af7&gt;&lt;span lang=EN-US&gt; ^ q^ for a given n&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:29.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Input: an
arbitrary behavior policy b such that b(a&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;s) &amp;gt; 0, &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;s &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;G
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;S, a &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;A Initialize Q(s, a)
arbitrarily, &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;s &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;G
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;S, a &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:29.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize n to be e-greedy with
respect to Q, or as a fixed given policy Parameters: step size a &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(0,1], small e &amp;gt; 0, a positive integer n All store and access
operations can take their index mod n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat (for each episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:208.0pt;margin-bottom:0cm;
margin-left:14.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
and store So = terminal Select and store an action Ao &lt;/span&gt;&lt;span
class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;b(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^|&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;So)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:208.0pt;margin-bottom:0cm;
margin-left:14.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Store
Q(So, Ao) as Qo T &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;\A1\AA ^&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:14.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For t =
0, 1, 2, . . . :&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If t &amp;lt; T:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:14.0pt;text-indent:29.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Take
action At&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:29.0pt;margin-bottom:0cm;
margin-left:43.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Observe
the next reward R; observe and store the next state as St+i If St+i is
terminal:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:248.0pt;margin-bottom:0cm;
margin-left:43.0pt;margin-bottom:.0001pt;text-indent:15.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+1 Store (^t &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;~ R &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Qt else:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:57.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 262.9pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Select and
store an action At+i&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;b(&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^|&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;St+i)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:189.0pt;margin-bottom:0cm;
margin-left:57.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Select
and store at+i Store Q(St+i, At+i) as Qt+i&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:12.0pt;margin-bottom:3.0pt;
margin-left:57.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Store R + Yat+iQt+i + Y(1 &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;at+i) E&lt;sub&gt;a&lt;/sub&gt;n(a&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;St+i)Q(St+i, a) &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Qt as &amp;amp; Store
n(At+i&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;St+i) as nt+i&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:57.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;Store&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span class=9pt6&gt;&lt;span lang=ZH-TW style=&#39;font-size:9.0pt&#39;&gt;^&lt;sup&gt;1&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=afc&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;))&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;as&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; Pt+i&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:108.65pt;background:transparent&#39;&gt;&lt;span class=12pt1&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;t \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;n + &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;span
class=12pt1&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;is the time whose estimate is being updated)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If &lt;/span&gt;&lt;span class=12pt1&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t &amp;gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;0:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:334.0pt;margin-bottom:0cm;
margin-left:43.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;P &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;1 &lt;/span&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1 &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;G &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA Q&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:14.0pt;text-indent:29.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For k = &lt;/span&gt;&lt;span
class=12pt1&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t, &lt;/span&gt;&lt;/span&gt;&lt;span
class=1pt4&gt;&lt;span lang=EN-US&gt;...,&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; min(T + n &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;1, T &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;1):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:189.0pt;margin-bottom:0cm;
margin-left:57.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;G &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;G + &lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;^k &lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;e &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;Y&lt;/span&gt;&lt;/sup&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;e&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;[&lt;sup&gt;(1&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/sup&gt;&lt;span
class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;a&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;k+&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;)n&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;k&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + &lt;sup&gt;a&lt;/sup&gt;k+i] &lt;sup&gt;p &lt;/sup&gt;&lt;/span&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=9pt5&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;p(1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/sup&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;k + &lt;sup&gt;a&lt;/sup&gt;k &lt;sup&gt;p&lt;/sup&gt;k&lt;sup&gt;)&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:14.0pt;text-indent:29.0pt;line-height:13.2pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t, &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t) &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA
Q&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t, &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t) + ap [G &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\A1\AA Q&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t, &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t)]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:29.0pt;margin-bottom:0cm;
margin-left:14.0pt;margin-bottom:.0001pt;text-indent:29.0pt;line-height:13.2pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If n is
being learned, then ensure that n(a&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;ST) is e-greedy wrt &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;Q(S&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t, &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;&amp;#8226;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) Until &lt;/span&gt;&lt;span class=12pt1&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= T \A1\AA 1&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l82 level1 lfo28;tab-stops:36.95pt;background:transparent&#39;&gt;&lt;a
name=bookmark118&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;7.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Summary&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:2.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;In this
chapter we have developed a range of temporal-difference learning methods that
lie in-between the one-step TD methods of the previous chapter and the Monte
Carlo methods of the chapter before. Methods that involve an intermediate
amount of bootstrapping are important because they will typically perform
better than either extreme.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:2.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_561&#34; o:spid=&#34;_x0000_s1460&#34;
 type=&#34;#_x0000_t75&#34; alt=&#34;image59&#34; style=&#39;position:absolute;left:0;text-align:left;
 margin-left:288.85pt;margin-top:14.4pt;width:87.35pt;height:239.05pt;
 z-index:251785002;visibility:visible;mso-wrap-style:square;
 mso-width-percent:0;mso-height-percent:0;mso-wrap-distance-left:5pt;
 mso-wrap-distance-top:0;mso-wrap-distance-right:5pt;
 mso-wrap-distance-bottom:0;mso-position-horizontal:absolute;
 mso-position-horizontal-relative:margin;mso-position-vertical:absolute;
 mso-position-vertical-relative:text;mso-width-percent:0;mso-height-percent:0;
 mso-width-relative:page;mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image060.png&#34;
  o:title=&#34;image59&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;Our focus in this chapter has been
on n-step methods, which look ahead to the next n rewards, states, and actions.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:2.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;The two 4-step
backup diagrams to the right together summa&amp;shy;rize most of the methods
introduced. The state-value backup shown is for n-step TD with importance
sampling, and the action-value backup is for n-step Q(a), which generalizes Ex&amp;shy;pected
Sarsa and Q-learning. All n-step methods involve a delay of n time steps before
updating, as only then are all the required future events known. A further
drawback is that they involve more computation per time step than previous
methods. Compared to one-step methods, n-step methods also require more memory
to record the states, actions, re&amp;shy;wards, and sometimes other variables over the
last n time steps. Eventually, in Chapter 12, we will see how multi-step TD
methods can be implemented with minimal memory and computational complexity
using eligibility traces, but there will always be some additional computation
beyond one-step methods. Such costs can be well worth paying to escape the
tyranny of the single time step.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:2.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;Although n-step
methods are more complex than those us&amp;shy;ing eligibility traces, they have the
great benefit of being conceptually clear. We have sought to take advantage of
this by developing two approaches to off-policy learning in the n-step case.
One, based on importance sampling is conceptually simple but can be of high
variance. If the target and behavior policies are very different it prob&amp;shy;ably
needs some new algorithmic ideas before it can be efficient and practical. The
other, based on tree backups, is the natural extension of Q-learning to the
multi-step case with stochastic target policies. It involves no importance
sampling but, again if the target and behavior policies are substantially
different, the bootstrapping may span only a few steps even if n is large.&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.05pt;
margin-left:36.0pt;line-height:13.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;a name=bookmark119&gt;&lt;span lang=EN-US&gt;Bibliographical and
Historical Remarks&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:36.0pt;text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;7.1-2 The
notion of n-step returns is due to Watkins (1989), who also first discussed
their error reduction property. n-step algorithms were explored in the first
edition of this book, in which they were treated as of conceptual interest, but
not feasible in practice. The work of Cichosz (1995) and particularly van
Seijen (2016) showed that they are actually completely practical algorithms.
Given this, and their conceptual clarity and simplicity, we have chosen to
highlight them here in the second edition. In particular, we now postpone all
discussion of the backward view and of eligibility traces until Chapter 12.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;The results in the random walk
examples were made for this text based on work of Sutton (1988) and Singh and
Sutton (1996). The use of backup diagrams to describe these and other
algorithms in this chapter is new.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:36.0pt;text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;7.3-5 The
developments in these sections are based on the work of Precup, Sut&amp;shy;ton, and
Singh (2000), Precup, Sutton, and Dasgupta (2001), and Sutton, Mahmood, Precup,
and van Hasselt (2014).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:11.8pt;
margin-left:36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;The tree-backup algorithm is due
to Precup, Sutton, and Singh (2000), but the presentation of it here is new.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;text-indent:-36.0pt;background:transparent&#39;&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt;7.6 The Q(a) algorithm is new to this text, but has
been explored further by De Asis, Hernandez-Garcia, Holland, and Sutton (2017).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:#141414;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection177&gt;

&lt;p class=208 style=&#39;text-align:justify;text-justify:inter-ideograph;line-height:
8.0pt;mso-line-height-rule:exactly;tab-stops:right 207.85pt 219.1pt 297.1pt 398.65pt;
background:transparent&#39;&gt;&lt;span class=203&gt;&lt;span lang=ZH-TW style=&#39;font-style:
normal&#39;&gt;172&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=204&gt;&lt;span lang=EN-US&gt;CHAPTER&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;7.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;MULTI-STEP&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;BOOTSTRAPPING&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=8a style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:22.5pt;
margin-left:1.0pt;line-height:19.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Chapter 8&lt;/span&gt;&lt;/p&gt;

&lt;p class=522 style=&#39;margin-top:0cm;margin-right:58.0pt;margin-bottom:40.25pt;
margin-left:1.0pt;mso-pagination:lines-together;page-break-after:avoid;
background:transparent&#39;&gt;&lt;a name=bookmark120&gt;&lt;span lang=EN-US&gt;Planning and
Learning with Tabular Methods&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In this chapter we develop a unified view of reinforcement learning
methods that require a model of the environment, such as dynamic programming
and heuristic search, and methods that can be used without a model, such as
Monte Carlo and temporal-difference methods. These are respectively called &lt;span
class=afb&gt;model-based&lt;/span&gt; and &lt;span class=afb&gt;model- fee&lt;/span&gt;
reinforcement learning methods. Model-based methods rely on &lt;span class=afb&gt;planning&lt;/span&gt;
as their primary component, while model-free methods primarily rely on &lt;span
class=afb&gt;learning.&lt;/span&gt; Although there are real differences between these
two kinds of methods, there are also great sim&amp;shy;ilarities. In particular, the
heart of both kinds of methods is the computation of value functions. Moreover,
all the methods are based on looking ahead to future events, computing a
backed-up value, and then using it to update an approximate value func&amp;shy;tion.
Earlier in this book we presented Monte Carlo and temporal-difference methods
as distinct alternatives, then showed how they can be unified by n-step methods
(and we will do this again more thoroughly with eligibility traces in Chapter
12). Our goal in this chapter is a similar integration of model-based and
model-free methods. Having established these as distinct in earlier chapters,
we now explore the extent to which they can be intermixed.&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.8pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l21 level1 lfo30;tab-stops:37.7pt;background:transparent&#39;&gt;&lt;a
name=bookmark121&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;8.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Models and Planning&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;By a &lt;span class=afb&gt;model&lt;/span&gt; of the
environment we mean anything that an agent can use to predict how the
environment will respond to its actions. Given a state and an action, a model
produces a prediction of the resultant next state and next reward. If the model
is stochastic, then there are several possible next states and next rewards,
each with some probability of occurring. Some models produce a description of
all possibilities and their probabilities; these we call &lt;span class=afb&gt;distribution
models&lt;/span&gt;. Other models produce just one of the possibilities, sampled
according to the probabilities; these we call &lt;span class=afb&gt;sample models&lt;/span&gt;.
For example, consider modeling the sum of a dozen dice. A distribution model
would produce all possible sums and their probabilities of occurring, whereas a
sample model would produce an individual sum drawn according to this
probability distribution. The kind of model assumed in dynamic programming&lt;/span&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;estimates of the MDP\A1\AFs dynamics, &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s&lt;sup&gt;;&lt;/sup&gt;, r&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;|&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s,
a&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;span class=MingLiUff0&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is a distribution
model. The kind of model used in the blackjack example in Chapter 5 is a sample
model. Distribution models are stronger than sample models in that they can
always be used to produce samples. However, in many applications it is much
easier to obtain sample models than distribution models. The dozen dice are a
simple example of this. It would be easy to write a computer program to
simulate the dice rolls and return the sum, but harder and more error-prone to
figure out all the possible sums and their probabilities.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Models can be used to mimic or simulate
experience. Given a starting state and action, a sample model produces a
possible transition, and a distribution model generates all possible
transitions weighted by their probabilities of occurring. Given a starting
state and a policy, a sample model could produce an entire episode, and a
distribution model could generate all possible episodes and their
probabilities. In either case, we say the model is used to &lt;span class=afb&gt;simulate&lt;/span&gt;
the environment and produce &lt;span class=afb&gt;simulated experience&lt;/span&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:11.75pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The word &lt;span class=afb&gt;planning&lt;/span&gt; is used in several
different ways in different fields. We use the term to refer to any
computational process that takes a model as input and produces or improves a
policy for interacting with the modeled environment:&lt;/span&gt;&lt;/p&gt;

&lt;p class=570 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.95pt;
margin-left:105.0pt;line-height:10.0pt;mso-line-height-rule:exactly;tab-stops:
237.2pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;model &lt;/span&gt;&lt;span
class=57MingLiU&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;span
class=57MingLiU0&gt;&lt;span lang=ZH-TW style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;\A8D&lt;/span&gt;&lt;/span&gt;&lt;span
class=57MingLiU0&gt;&lt;span style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;\BD\D0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&amp;gt; policy&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In artificial intelligence, there are two
distinct approaches to planning according to our definition. &lt;span class=afb&gt;State-space
planning&lt;/span&gt;, which includes the approach we take in this book, is viewed
primarily as a search through the state space for an optimal policy or an
optimal path to a goal. Actions cause transitions from state to state, and
value functions are computed over states. In what we call &lt;span class=afb&gt;plan-space
planning&lt;/span&gt;, planning is instead a search through the space of plans.
Operators transform one plan into another, and value functions, if any, are
defined over the space of plans. Plan-space planning includes evolutionary
methods and \A1\B0partial-order planning,\A1\B1 a common kind of planning in artificial
intelligence in which the ordering of steps is not completely determined at all
stages of planning. Plan-space methods are difficult to apply efficiently to
the stochastic sequential decision problems that are the focus in reinforcement
learning, and we do not consider them further (but see, e.g., Russell and
Norvig, 2010).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The unified view we present in this chapter is
that all state-space planning methods share a common structure, a structure
that is also present in the learning methods presented in this book. It takes
the rest of the chapter to develop this view, but there are two basic ideas: (&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) all state-space planning methods involve computing value functions
as a key intermediate step toward improving the policy, and (&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) they compute value functions by backup operations applied to
simulated experience. This common structure can be diagrammed as follows:&lt;/span&gt;&lt;/p&gt;

&lt;p class=570 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:27.0pt;margin-bottom:.0001pt;line-height:6.0pt;mso-line-height-rule:
exactly;tab-stops:117.25pt center 265.55pt right 374.05pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;i ,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;simulated
&lt;/span&gt;&lt;span class=57ArialUnicodeMS&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;backups&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sub&gt;r&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=570 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:6.0pt;
mso-line-height-rule:exactly;tab-stops:dashed 100.3pt center blank 144.0pt left 177.35pt dashed 222.1pt 222.15pt 237.2pt 343.7pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;model &lt;span style=&#39;mso-tab-count:1 dashed&#39;&gt;---------- &lt;/span&gt;&amp;#9658;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&amp;#8226;&lt;span
style=&#39;mso-tab-count:2&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;span
style=&#39;mso-tab-count:2 dashed&#39;&gt;----------------------- &lt;/span&gt;&amp;#9658; values &lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&amp;#9658; policy&lt;/span&gt;&lt;/p&gt;

&lt;p class=570 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:114.0pt;margin-bottom:.0001pt;line-height:6.0pt;mso-line-height-rule:
exactly;tab-stops:right 362.65pt 384.0pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;experience&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;r&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;J&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:10.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;letter-spacing:-.5pt;mso-ansi-language:
EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all
style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection178&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Dynamic programming methods clearly fit this
structure: they make sweeps through the space of states, generating for each
state the distribution of possible transitions. Each distribution is then used
to compute a backed-up value and update the state\A1\AFs estimated value. In this
chapter we argue that various other state-space planning methods also fit this
structure, with individual methods differing only in the kinds of backups they
do, the order in which they do them, and in how long the backed-up information
is retained.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:33.3pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Viewing planning methods in this way emphasizes their relationship
to the learning methods that we have described in this book. The heart of both
learning and planning methods is the estimation of value functions by backup
operations. The difference is that whereas planning uses simulated experience
generated by a model, learning methods use real experience generated by the
environment. Of course this difference leads to a number of other differences,
for example, in how performance is assessed and in how flexibly experience can
be generated. But the common structure means that many ideas and algorithms can
be transferred between planning and learning. In particular, in many cases a
learning algorithm can be substituted for the key backup step of a planning method.
Learning methods require only experience as input, and in many cases they can
be applied to simulated experience just as well as to real experience. The box
below shows a simple example of a planning method based on one-step tabular
Q-learning and on random samples from a sample model. This method, which we
call &lt;span class=afb&gt;random-sample one-step tabular Q-planning,&lt;/span&gt;
converges to the optimal policy for the model under the same conditions that
one-step tabular Q- learning converges to the optimal policy for the real environment
(each state-action pair must be selected an infinite number of times in Step 1,
and a must decrease appropriately over time).&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:104.4pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=139 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=139 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:104.4pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_24&#34; o:spid=&#34;_x0000_i1099&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image60&#34;
   style=&#39;width:399.75pt;height:105pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image061.jpg&#34;
    o:title=&#34;image60&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:32.95pt;margin-right:1.0pt;margin-bottom:
0cm;margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In addition to the unified
view of planning and learning methods, a second theme in this chapter is the
benefits of planning in small, incremental steps. This enables planning to be
interrupted or redirected at any time with little wasted computation, which
appears to be a key requirement for efficiently intermixing planning with
acting and with learning of the model. Planning in very small steps may be the
most efficient approach even on pure planning problems if the problem is too
large to be solved exactly.&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l21 level1 lfo30;tab-stops:36.5pt;background:transparent&#39;&gt;&lt;a
name=bookmark122&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;8.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Dyna: Integrating Planning,
Acting, and Learning&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;When planning is done on-line, while
interacting with the environment, a number of interesting issues arise. New
information gained from the interaction may change the model and thereby
interact with planning. It may be desirable to customize the planning process
in some way to the states or decisions currently under consideration, or
expected in the near future. If decision-making and model-learning are both
computation-intensive processes, then the available computational resources may
need to be divided between them. To begin exploring these issues, in this section
we present Dyna-Q, a simple architecture integrating the major functions needed
in an on-line planning agent. Each function appears in Dyna-Q in a simple,
almost trivial, form. In subsequent sections we elaborate some of the alternate
ways of achieving each function and the trade-offs between them. For now, we
seek merely to illustrate the ideas and stimulate your intuition.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Within a planning agent, there
are at least two roles for real experience: it can be used to improve the model
(to make it more accurately match the real environment) and it can be used to
directly improve the value function and policy using the kinds of reinforcement
learning methods we have discussed in previous chapters. The former we call &lt;span
class=afb&gt;model-learning&lt;/span&gt;, and the latter we call &lt;span class=afb&gt;direct
reinforcement learning&lt;/span&gt; (direct RL). The possible relationships between
experience, model, values, and policy are summarized in Figure 8.1. Each arrow
shows a relationship of influence and presumed improvement. Note how experience
can improve value functions and policies either directly or indirectly via the
model. It is the latter, which is sometimes called &lt;span class=afb&gt;indirect
reinforcement learning&lt;/span&gt;, that is involved in planning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:30.3pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;v:shape
 id=&#34;Picture_x0020_559&#34; o:spid=&#34;_x0000_s1459&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image61&#34;
 style=&#39;position:absolute;left:0;text-align:left;margin-left:95.15pt;
 margin-top:119.5pt;width:66.7pt;height:76.3pt;z-index:251786026;visibility:visible;
 mso-wrap-style:square;mso-width-percent:0;mso-height-percent:0;
 mso-wrap-distance-left:5pt;mso-wrap-distance-top:0;mso-wrap-distance-right:5pt;
 mso-wrap-distance-bottom:0;mso-position-horizontal:absolute;
 mso-position-horizontal-relative:margin;mso-position-vertical:absolute;
 mso-position-vertical-relative:text;mso-width-percent:0;mso-height-percent:0;
 mso-width-relative:page;mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image062.jpg&#34;
  o:title=&#34;image61&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Both direct and indirect methods have advantages and
disadvantages. Indirect methods often make fuller use of a limited amount of
experience and thus achieve a better policy with fewer environmental
interactions. On the other hand, direct methods are much simpler and are not
affected by biases in the design of the model. Some have argued that indirect
methods are always superior to direct ones, while others have argued that
direct methods are responsible for most human and animal&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:83.75pt;mso-element-frame-hspace:
111.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
mso-element-anchor-horizontal:column;mso-element-left:167.8pt;mso-element-top:
.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=112&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=112 style=&#39;padding-top:0cm;padding-right:
  111.1pt;padding-bottom:0cm;padding-left:111.1pt&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:83.75pt;mso-element-frame-hspace:111.1pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:167.8pt;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_25&#34; o:spid=&#34;_x0000_i1098&#34;
   type=&#34;#_x0000_t75&#34; alt=&#34;image62&#34; style=&#39;width:120.75pt;height:84pt;
   visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image063.jpg&#34;
    o:title=&#34;image62&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=580 style=&#39;margin-left:128.0pt;line-height:11.5pt;mso-line-height-rule:
exactly;tab-stops:right 285.2pt;background:transparent&#39;&gt;&lt;a name=bookmark123&gt;&lt;span
lang=EN-US&gt;model&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;experience&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:24.0pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=32 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=32 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:24.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_26&#34; o:spid=&#34;_x0000_i1097&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image63&#34;
   style=&#39;width:108.75pt;height:24pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image064.jpg&#34;
    o:title=&#34;image63&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=194 align=left style=&#39;text-align:left;line-height:7.5pt;mso-line-height-rule:
  exactly;background:transparent;mso-element:frame;mso-element-frame-height:
  24.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span class=191&gt;&lt;span lang=EN-US&gt;model&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=194 align=left style=&#39;text-align:left;line-height:7.5pt;mso-line-height-rule:
  exactly;background:transparent;mso-element:frame;mso-element-frame-height:
  24.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span class=191&gt;&lt;span lang=EN-US&gt;learning&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=afffff8 align=left style=&#39;text-align:left;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-height:24.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US&gt;Figure 8.1: Relationships among
  learning, planning, and acting.&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Courier New&#34;;
mso-fareast-font-family:&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;
mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;learning. Related debates in psychology and
artificial intelligence concern the relative importance of cognition as opposed
to trial-and-error learning, and of deliberative planning as opposed to
reactive decision-making (see Chapter 14 for discussion of some of these issues
from the perspective of psychology). Our view is that the contrast between the
alternatives in all these debates has been exaggerated, that more insight can
be gained by recognizing the similarities between these two sides than by opposing
them. For example, in this book we have emphasized the deep similarities
between dynamic programming and temporal-difference methods, even though one
was designed for planning and the other for model-free learning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Dyna-Q includes all of the processes shown in
Figure 8.1&lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\AA&lt;/span&gt;&lt;span
lang=EN-US&gt;planning, acting, model- learning, and direct RL&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\AA&lt;/span&gt;&lt;span lang=EN-US&gt;all
occurring continuously. The planning method is the random-sample one-step
tabular Q-planning method given in Figure 8.1. The di&amp;shy;rect RL method is
one-step tabular Q-learning. The model-learning method is also table-based and
assumes the environment is deterministic. After each transition St, At Rt+&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, St+&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, the model records in its table entry for St, At the prediction
that Rt+&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, St&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; will deterministically follow. Thus, if the model is queried with a
state-action pair that has been experienced before, it simply returns the
last-observed next state and next reward as its prediction. During planning,
the Q-planning al&amp;shy;gorithm randomly samples only from state-action pairs that
have previously been experienced (in Step 1), so the model is never queried
with a pair about which it has no information.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:30.3pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The overall architecture of Dyna agents, of which the Dyna-Q
algorithm is one example, is shown in Figure 8.2. The central column represents
the basic interaction between agent and environment, giving rise to a
trajectory of real experience. The arrow on the left of the figure represents
direct reinforcement learning operating&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:185.75pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=248 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=248 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:185.75pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_27&#34; o:spid=&#34;_x0000_i1096&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image64&#34;
   style=&#39;width:246.75pt;height:186pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image065.jpg&#34;
    o:title=&#34;image64&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=afffff8 style=&#39;background:transparent;mso-element:frame;mso-element-frame-height:
  185.75pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span lang=EN-US&gt;Figure 8.2: The general Dyna Architecture. Real
  experience, passing back and forth between the environment and the policy,
  affects policy and value functions in much the same way as does simulated
  experience generated by the model of the environment.&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection179&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;on real experience to improve the value function
and the policy. On the right are model-based processes. The model is learned
from real experience and gives rise to simulated experience. We use the term &lt;span
class=afb&gt;search control&lt;/span&gt; to refer to the process that selects the
starting states and actions for the simulated experiences generated by the
model. Finally, planning is achieved by applying reinforcement learning methods
to the simulated experiences just as if they had really happened. Typically, as
in Dyna-Q, the same reinforcement learning method is used both for learning
from real experience and for planning from simulated experience. The
reinforcement learning method is thus the \A1\B0final common path\A1\B1 for both learning
and planning. Learning and planning are deeply integrated in the sense that
they share almost all the same machinery, differing only in the source of their
experience.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.3pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Conceptually, planning, acting, model-learning, and direct RL occur
simultane&amp;shy;ously and in parallel in Dyna agents. For concreteness and
implementation on a serial computer, however, we fully specify the order in
which they occur within a time step. In Dyna-Q, the acting, model-learning, and
direct RL processes require little computation, and we assume they consume just
a fraction of the time. The remaining time in each step can be devoted to the
planning process, which is in&amp;shy;herently computation-intensive. Let us assume
that there is time in each step, after acting, model-learning, and direct RL,
to complete n iterations (Steps 1-3) of the Q-planning algorithm. In the
pseudocode algorithm for Dyna-Q in the box below, Model(s, a) denotes the
contents of the (predicted next state and reward) for state- action pair (s,
a). Direct reinforcement learning, model-learning, and planning are implemented
by steps (d), (e), and (f), respectively. If (e) and (f) were omitted, the
remaining algorithm would be one-step tabular Q-learning.&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:18.25pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=24 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=24 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:18.25pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_28&#34; o:spid=&#34;_x0000_i1095&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image65&#34;
   style=&#39;width:399.75pt;height:18pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image066.jpg&#34;
    o:title=&#34;image65&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=255 align=right style=&#39;text-align:right;line-height:11.75pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-height:18.25pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US&gt;Initialize Q(s, a) and Model(s, a)
  for all s G S and a G A(s)&lt;/span&gt;&lt;/p&gt;
  &lt;p class=255 align=left style=&#39;text-align:left;line-height:11.75pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-height:18.25pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US&gt;Do forever:&lt;/span&gt;&lt;/p&gt;
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  lang=EN-US&gt;A \A1\AA e-greedy(S, Q)&lt;/span&gt;&lt;/p&gt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
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  style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
  lang=EN-US&gt;Execute action A; observe resultant reward, R, and state, S&lt;/span&gt;&lt;span
  class=25CenturySchoolbook0&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;&#39;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=255 style=&#39;margin-left:0cm;text-indent:0cm;line-height:11.75pt;
  mso-line-height-rule:exactly;mso-list:l55 level1 lfo31;tab-stops:16.1pt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
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  style=&#39;font-size:7.0pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
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  lang=EN-US&gt;Repeat n times:&lt;/span&gt;&lt;/p&gt;
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 &lt;/tr&gt;
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&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:21.15pt;margin-right:1.0pt;margin-bottom:
0cm;margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 8.1: Dyna Maze Consider the
simple maze shown inset in Figure 8.3. In each of the 47 states there are four
actions, up, down, right, and left, which take the agent deterministically to
the corresponding neighboring states, except when movement is blocked by an
obstacle or the edge of the maze, in which case the agent remains where it is.
Reward is zero on all transitions, except those into the goal state, on which
it is +&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. After reaching the goal state (G), the agent returns to&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
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mso-break-type:section-break&#39;&gt;
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       &lt;td width=18 valign=top style=&#39;width:13.2pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.5pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       &lt;td width=17 valign=top style=&#39;width:12.5pt;background:white;padding:
       0cm .5pt 0cm .5pt;height:12.5pt;mso-height-rule:exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       &lt;td width=18 valign=top style=&#39;width:13.7pt;border:none;border-right:
       solid windowtext 1.0pt;mso-border-right-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.5pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
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      &lt;tr style=&#39;mso-yfti-irow:3;height:12.7pt;mso-height-rule:exactly&#39;&gt;
       &lt;td width=18 valign=top style=&#39;width:13.2pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.7pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       &lt;td width=17 valign=top style=&#39;width:12.95pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.7pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       &lt;td width=17 valign=top style=&#39;width:12.7pt;background:white;padding:
       0cm .5pt 0cm .5pt;height:12.7pt;mso-height-rule:exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       &lt;td width=17 valign=top style=&#39;width:12.95pt;border:none;border-top:
       solid windowtext 1.0pt;mso-border-top-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.7pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       &lt;td width=17 valign=top style=&#39;width:12.95pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.7pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=17 valign=top style=&#39;width:12.95pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.7pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       &lt;td width=18 valign=top style=&#39;width:13.2pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.7pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       solid windowtext 1.0pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.7pt;mso-height-rule:
       exactly&#39;&gt;
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       border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
       solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.7pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.7pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       &lt;td width=17 valign=top style=&#39;width:12.95pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.7pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       &lt;td width=17 valign=top style=&#39;width:12.7pt;border:none;border-left:
       solid windowtext 1.0pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.7pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       &lt;td width=17 valign=top style=&#39;width:12.95pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.7pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.7pt;mso-height-rule:
       exactly&#39;&gt;
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       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.7pt;mso-height-rule:
       exactly&#39;&gt;
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       border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
       solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:12.7pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       &lt;td width=18 valign=top style=&#39;width:13.2pt;border:solid windowtext 1.0pt;
       border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
       solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:13.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
       solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
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       exactly&#39;&gt;
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       border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
       solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:13.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       exactly&#39;&gt;
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       solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;
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  &lt;![if !mso]&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;14-&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection182&gt;

&lt;p class=MsoNormal style=&#39;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;margin-top:.95pt;margin-right:0cm;margin-bottom:.95pt;
margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection183&gt;

&lt;p class=117 align=center style=&#39;margin-bottom:16.95pt;text-align:center;
line-height:10.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;a
name=bookmark127&gt;&lt;span class=111&gt;&lt;span lang=EN-US&gt;Episodes&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:19.45pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
11.75pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=431&gt;&lt;span
lang=EN-US&gt;Figure 8.3: A simple maze (inset) and the average learning curves
for Dyna-Q agents varying in their number of planning steps (n) per real step.
The task is to travel from S to G as quickly as possible.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 align=center style=&#39;text-align:center;line-height:13.7pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=431&gt;&lt;span
lang=EN-US&gt;the start state (&lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;) to
begin a new episode. This is a discounted, episodic task with&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;mso-list:l83 level1 lfo32;
tab-stops:10.85pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal;mso-bidi-font-weight:bold&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;Y&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;= 0.95.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;The main part of Figure 8.3 shows
average learning curves from an experiment in which Dyna-Q agents were applied
to the maze task. The initial action values were zero, the step-size parameter
was &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
font-weight:normal&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt; = 0.1, and
the exploration parameter was e = 0.1. When selecting greedily among actions,
ties were broken randomly. The agents varied in the number of planning steps,
n, they performed per real step. For each n, the curves show the number of
steps taken by the agent to reach the goal in each episode, averaged over 30
repetitions of the experiment. In each repetition, the initial seed for the
random number generator was held constant across algorithms. Because of this,
the first episode was exactly the same (about 1700 steps) for all values of n,
and its data are not shown in the figure. After the first episode, performance
improved for all values of n, but much more rapidly for larger values. Recall
that the n = 0 agent is a nonplanning agent, using only direct reinforcement
learning (one- step tabular Q-learning). This was by far the slowest agent on
this problem, despite the fact that the parameter values (a and &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;e)&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt; were optimized for it. The nonplanning agent took
about 25 episodes to reach (e-)optimal performance, whereas the n = 5 agent
took about five episodes, and the n = 50 agent took only three episodes.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Figure 8.4 shows why the planning
agents found the solution so much faster than the nonplanning agent. Shown are
the policies found by the n = 0 and n = 50 agents halfway through the second
episode. Without planning (n = 0), each episode adds only one additional step
to the policy, and so only one step (the last) has been&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=208 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:54.0pt;margin-bottom:.0001pt;text-indent:-54.0pt;line-height:35.75pt;
mso-line-height-rule:exactly;tab-stops:219.85pt;background:transparent&#39;&gt;&lt;span
class=203&gt;&lt;span lang=ZH-TW style=&#39;font-style:normal&#39;&gt;180 &lt;/span&gt;&lt;/span&gt;&lt;span
class=204&gt;&lt;span lang=EN-US&gt;CHAPTER 8. PLANNING AND LEARNING WITH TABULAR
METHODS &lt;/span&gt;&lt;/span&gt;&lt;span class=203&gt;&lt;span lang=EN-US style=&#39;mso-ansi-language:
EN-US;font-style:normal&#39;&gt;W&lt;/span&gt;&lt;/span&gt;&lt;span class=20ArialUnicodeMS0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-style:normal&#39;&gt;ITHOUT &lt;/span&gt;&lt;/span&gt;&lt;span
class=203&gt;&lt;span lang=EN-US style=&#39;mso-ansi-language:EN-US;font-style:normal&#39;&gt;P&lt;/span&gt;&lt;/span&gt;&lt;span
class=20ArialUnicodeMS0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-style:
normal&#39;&gt;LANNING &lt;/span&gt;&lt;/span&gt;&lt;span class=203&gt;&lt;span lang=EN-US
style=&#39;mso-ansi-language:EN-US;font-style:normal&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=204&gt;&lt;span lang=EN-US&gt;n=0)&lt;/span&gt;&lt;/span&gt;&lt;span class=203&gt;&lt;span lang=EN-US
style=&#39;mso-ansi-language:EN-US;font-style:normal&#39;&gt;&lt;span style=&#39;mso-tab-count:
1&#39;&gt; &lt;/span&gt;W&lt;/span&gt;&lt;/span&gt;&lt;span class=20ArialUnicodeMS0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-style:normal&#39;&gt;ITH &lt;/span&gt;&lt;/span&gt;&lt;span class=203&gt;&lt;span
lang=EN-US style=&#39;mso-ansi-language:EN-US;font-style:normal&#39;&gt;P&lt;/span&gt;&lt;/span&gt;&lt;span
class=20ArialUnicodeMS0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-style:
normal&#39;&gt;LANNING &lt;/span&gt;&lt;/span&gt;&lt;span class=203&gt;&lt;span lang=EN-US
style=&#39;mso-ansi-language:EN-US;font-style:normal&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=204&gt;&lt;span lang=EN-US&gt;n=50)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div align=center&gt;

&lt;table class=MsoNormalTable border=0 cellspacing=0 cellpadding=0
 style=&#39;border-collapse:collapse;mso-table-layout-alt:fixed;mso-table-overlap:
 never;mso-padding-alt:0cm .5pt 0cm .5pt&#39;&gt;
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  background:white;padding:0cm .5pt 0cm .5pt;height:14.65pt;mso-height-rule:
  exactly&#39;&gt;
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 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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margin-left:0cm;line-height:11.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_543&#34; o:spid=&#34;_x0000_s1447&#34; type=&#34;#_x0000_t75&#34;
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&lt;/v:shape&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;Figure 8.4: Policies found by
planning and nonplanning Dyna-Q agents halfway through the second episode. The
arrows indicate the greedy action in each state; if no arrow is shown for a
state, then all of its action values were equal. The black square indicates the
location of the agent.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;line-height:13.7pt;mso-line-height-rule:exactly;tab-stops:right 399.6pt;
background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;learned so far. With
planning, again only one step is learned during the first episode, but here
during the second episode an extensive policy has been developed that by the
episode\A1\AFs end will reach almost back to the start state. This policy is built
by the planning process while the agent is still wandering near the start
state. By the end of the third episode a complete optimal policy will have been
found and perfect performance attained.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.7pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;In Dyna-Q,
learning and planning are accomplished by exactly the same algorithm, operating
on real experience for learning and on simulated experience for planning.
Because planning proceeds incrementally, it is trivial to intermix planning and
act&amp;shy;ing. Both proceed as fast as they can. The agent is always reactive and
always deliberative, responding instantly to the latest sensory information and
yet always planning in the background. Also ongoing in the background is the
model-learning process. As new information is gained, the model is updated to
better match real&amp;shy;ity. As the model changes, the ongoing planning process will
gradually compute a different way of behaving to match the new model.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.55pt;
margin-left:0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=21ArialUnicodeMS0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;Exercise 8.1 &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;The
nonplanning method looks particularly poor in Figure 8.4 because it is a
one-step method; a method using multi-step bootstrapping would do better. Do
you think one of the multi-step bootstrapping methods from Chapter 7 could do
as well as the Dyna method? Explain why or why not.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l21 level1 lfo30;tab-stops:36.25pt;background:transparent&#39;&gt;&lt;a
name=bookmark128&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;8.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;When the Model Is Wrong&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;In the maze
example presented in the previous section, the changes in the model were
relatively modest. The model started out empty, and was then filled only with
exactly correct information. In general, we cannot expect to be so fortunate.
Models may be incorrect because the environment is stochastic and only a
limited number of samples have been observed, or because the model was learned
using function approximation that has generalized imperfectly, or simply
because the environment has changed and its new behavior has not yet been
observed. When the model is incorrect, the planning process is likely to
compute a suboptimal policy.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection184&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:3.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In some cases, the suboptimal
policy computed by planning quickly leads to the discovery and correction of
the modeling error. This tends to happen when the model is optimistic in the
sense of predicting greater reward or better state transitions than are
actually possible. The planned policy attempts to exploit these opportunities
and in doing so discovers that they do not exist.&lt;/span&gt;&lt;/p&gt;

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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
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  &lt;![if !mso]&gt;
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   &lt;tr&gt;
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    &lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
    text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:
    transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;
    letter-spacing:0pt&#39;&gt;wandering around behind the barrier. the new opening
    and the new optimal&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
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&lt;/v:shape&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;Example 8.2: Blocking
Maze &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;A maze example illustrating this relatively
minor kind of modeling error and recovery from it is shown in Figure 8.5.
Initially, there is a short path from start to goal, to the right of the
barrier, as shown in the upper left of the figure. After 1000 time steps, the
short path is \A1\B0blocked,\A1\B1 and a longer path is opened up along the left-hand
side of the barrier, as shown in upper right of the figure. The graph shows
average cumulative reward for a Dyna-Q agent and an enhanced Dyna-Q+ agent to
be described shortly. The first part of the graph shows that both Dyna agents
found the short path within 1000 steps. When the environment changed, the
graphs become flat, indicating a period during which the agents obtained no
reward because they were After a while, however, they were able to find
behavior.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection185&gt;

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     &lt;div align=center&gt;
     &lt;table class=MsoNormalTable border=0 cellspacing=0 cellpadding=0
      style=&#39;border-collapse:collapse;mso-table-layout-alt:fixed;mso-table-overlap:
      never;mso-padding-alt:0cm .5pt 0cm .5pt&#39;&gt;
      &lt;tr style=&#39;mso-yfti-irow:0;mso-yfti-firstrow:yes;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;td width=12 valign=top style=&#39;width:8.65pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       &lt;td width=11 valign=top style=&#39;width:7.9pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border:solid windowtext 1.0pt;
       border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
       solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:
       6.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
       class=6pt1&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;G&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
      &lt;/tr&gt;
      &lt;tr style=&#39;mso-yfti-irow:1;height:7.2pt;mso-height-rule:exactly&#39;&gt;
       &lt;td width=12 valign=top style=&#39;width:8.65pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:7.9pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border:solid windowtext 1.0pt;
       border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
       solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:7.2pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
      &lt;/tr&gt;
      &lt;tr style=&#39;mso-yfti-irow:2;height:10.8pt;mso-height-rule:exactly&#39;&gt;
       &lt;td width=12 valign=top style=&#39;width:8.65pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:7.9pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 rowspan=2 valign=top style=&#39;width:8.15pt;border:solid windowtext 1.0pt;
       border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
       solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
      &lt;/tr&gt;
      &lt;tr style=&#39;mso-yfti-irow:3;height:10.8pt;mso-height-rule:exactly&#39;&gt;
       &lt;td width=12 valign=top style=&#39;width:8.65pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:7.9pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
       &lt;/td&gt;
       &lt;td width=11 valign=top style=&#39;width:8.15pt;border-top:solid windowtext 1.0pt;
       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
       background:white;padding:0cm .5pt 0cm .5pt;height:10.8pt;mso-height-rule:
       exactly&#39;&gt;
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       exactly&#39;&gt;
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       exactly&#39;&gt;
       &lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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       exactly&#39;&gt;
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       exactly&#39;&gt;
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       exactly&#39;&gt;
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       background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
       exactly&#39;&gt;
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       background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
       exactly&#39;&gt;
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       exactly&#39;&gt;
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       border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
       mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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       exactly&#39;&gt;
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       background:white;padding:0cm .5pt 0cm .5pt;height:11.05pt;mso-height-rule:
       exactly&#39;&gt;
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       exactly&#39;&gt;
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       6.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
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       height:7.45pt;mso-height-rule:exactly&#39;&gt;
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      &lt;/tr&gt;
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     &lt;/div&gt;
     &lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
     &lt;/div&gt;
     &lt;![if !mso]&gt;&lt;/td&gt;
    &lt;/tr&gt;
   &lt;/table&gt;
   &lt;![endif]&gt;&lt;/v:textbox&gt;
  &lt;w:wrap anchorx=&#34;margin&#34;/&gt;
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 margin-top:65.3pt;width:231.85pt;height:120.95pt;z-index:251446058;
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 mso-height-percent:0;mso-wrap-distance-left:5pt;mso-wrap-distance-top:0;
 mso-wrap-distance-right:5pt;mso-wrap-distance-bottom:0;
 mso-position-horizontal:absolute;mso-position-horizontal-relative:margin;
 mso-position-vertical:absolute;mso-position-vertical-relative:text;
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  o:title=&#34;image68&#34;/&gt;
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&lt;/v:shape&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:20.25pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection186&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Greater difficulties arise when the environment
changes to become &lt;span class=afb&gt;better&lt;/span&gt; than it was before, and yet the
formerly correct policy does not reveal the improvement. In these cases the
modeling error may not be detected for a long time, if ever, as we see in the
next example.&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.3pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;Example 8.3: Shortcut Maze &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;The problem caused by this kind of environmental change is
illustrated by the maze example shown in Figure &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. Initially, the optimal path is to go around the left side of the
barrier (upper left). After 3000 steps, however, a shorter path is opened up
along the right side, without disturbing the longer path (upper right). The
graph shows that the regular Dyna-Q agent never switched to the shortcut. In
fact, it never realized that it existed. Its model said that there was no
shortcut, so the more it planned, the less likely it was to step to the right
and discover it. Even with an e-greedy policy, it is very unlikely that an
agent will take so many exploratory actions as to discover the shortcut.&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:185.3pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=247 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=247 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:185.3pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_29&#34; o:spid=&#34;_x0000_i1094&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image69&#34;
   style=&#39;width:231pt;height:185.25pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image070.jpg&#34;
    o:title=&#34;image69&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=6c style=&#39;line-height:8.5pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-height:185.3pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;&lt;span class=63&gt;&lt;span
  lang=EN-US&gt;Time steps&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=263 style=&#39;line-height:12.0pt;mso-line-height-rule:exactly;
  tab-stops:right 399.6pt;background:transparent;mso-element:frame;mso-element-frame-height:
  185.3pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span lang=EN-US&gt;Figure &lt;/span&gt;&lt;span class=26CenturySchoolbook&gt;&lt;span
  lang=EN-US style=&#39;font-weight:normal&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;span
  class=26CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
  lang=EN-US&gt;: Average performance of Dyna agents on a shortcut task. The left
  environment was used for the first 3000 steps, the right environment for the
  rest.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:11.95pt;margin-right:1.0pt;margin-bottom:
0cm;margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The general problem here is
another version of the conflict between exploration and exploitation. In a
planning context, exploration means trying actions that improve the model,
whereas exploitation means behaving in the optimal way given the current model.
We want the agent to explore to find changes in the environment, but not so
much that performance is greatly degraded. As in the earlier
exploration/exploitation conflict, there probably is no solution that is both
perfect and practical, but simple heuristics are often effective.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:2.8pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The Dyna-Q+ agent that did solve the shortcut maze uses one such
heuristic. This agent keeps track for each state-action pair of how many time
steps have elapsed since the pair was last tried in a real interaction with the
environment. The more time that has elapsed, the greater (we might presume) the
chance that the dynamics of this pair has changed and that the model of it is
incorrect. To encourage behavior that tests long-untried actions, a special
\A1\B0bonus reward\A1\B1 is given on simulated experiences involving these actions. In
particular, if the modeled reward for a transition is r, and the transition has
not been tried in t time steps, then planning backups are done as if that
transition produced a reward of &lt;span class=afb&gt;r&lt;/span&gt; + k^/T, for some small
k. This encourages the agent to keep testing all accessible state transitions
and even to find long sequences of actions in order to carry out such tests.&lt;a
style=&#39;mso-footnote-id:ftn12&#39; href=&#34;#_ftn12&#34; name=&#34;_ftnref12&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;[12]&lt;/span&gt;&lt;/sup&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt; Of course
all this testing has its cost, but in many cases, as in the shortcut maze, this
kind of computational curiosity is well worth the extra exploration.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.2pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;Exercise 8.2 &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Why did the Dyna agent with exploration bonus, Dyna-Q+, perform
better in the first phase as well as in the second phase of the blocking and
shortcut experiments?&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;Exercise 8.3 &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Careful inspection of Figure &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;8.6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; reveals
that the difference between Dyna-Q+ and Dyna-Q narrowed slightly over the first
part of the experiment. What is the reason for this?&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 365.75pt;background:transparent&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span
lang=EN-US&gt;Exercise 8.4 (programming) &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;The
exploration bonus described above actually changes the estimated values of
states and actions. Is this necessary? Suppose the bonus was used not in
backups, but solely in action selection. That is, suppose the action selected
was always that for which Q(St, a) +&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(St,
a) was&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;maximal. Carry out a gridworld experiment that tests and illustrates
the strengths and weaknesses of this alternate approach.&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l21 level1 lfo30;tab-stops:36.5pt;background:transparent&#39;&gt;&lt;a
name=bookmark129&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;8.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Prioritized Sweeping&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In the Dyna agents presented in the preceding sections, simulated
transitions are started in state-action pairs selected uniformly at random from
all previously ex&amp;shy;perienced pairs. But a uniform selection is usually not the
best; planning can be much more efficient if simulated transitions and backups
are focused on particular state-action pairs. For example, consider what
happens during the second episode of the first maze task (Figure 8.4). At the
beginning of the second episode, only the state-action pair leading directly
into the goal has a positive value; the values of all other pairs are still
zero. This means that it is pointless to back up along almost all transitions,
because they take the agent from one zero-valued state to another, and thus the
backups would have no effect. Only a backup along a transition into the state
just prior to the goal, or from it, will change any values. If simulated
transitions are generated uniformly, then many wasteful backups will be made
before stumbling onto one of these useful ones. As planning progresses, the region
of useful back&amp;shy;ups grows, but planning is still far less efficient than it
would be if focused where it would do the most good. In the much larger
problems that are our real objective, the number of states is so large that an
unfocused search would be extremely inefficient.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;This example suggests that
search might be usefully focused by working &lt;span class=afb&gt;backward &lt;/span&gt;from
goal states. Of course, we do not really want to use any methods specific to
the idea of \A1\B0goal state.\A1\B1 We want methods that work for general reward functions.
Goal states are just a special case, convenient for stimulating intuition. In
general, we want to work back not just from goal states but from any state
whose value has changed. Suppose that the values are initially correct given
the model, as they were in the maze example prior to discovering the goal.
Suppose now that the agent discovers a change in the environment and changes
its estimated value of one state, either up or down. Typically, this will imply
that the values of many other states should also be changed, but the only
useful one-step backups are those of actions that lead directly into the one
state whose value has been changed. If the values of these actions are updated,
then the values of the predecessor states may change in turn. If so, then
actions leading into them need to be backed up, and then &lt;span class=afb&gt;their&lt;/span&gt;
predecessor states may have changed. In this way one can work backward from
arbitrary states that have changed in value, either performing useful backups
or terminating the propagation. This general idea might be termed &lt;span
class=afb&gt;backward focusing&lt;/span&gt; of planning computations.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:30.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;As the frontier of useful backups propagates backward, it often
grows rapidly, producing many state-action pairs that could usefully be backed
up. But not all of these will be equally useful. The values of some states may
have changed a lot, whereas others may have changed little. The predecessor
pairs of those that have changed a lot are more likely to also change a lot. In
a stochastic environment, variations in estimated transition probabilities also
contribute to variations in the sizes of changes and in the urgency with which
pairs need to be backed up. It is natural to prioritize the backups according
to a measure of their urgency, and perform them in order of priority. This is
the idea behind &lt;span class=afb&gt;prioritized sweeping.&lt;/span&gt; A queue is
maintained of every state-action pair whose estimated value would change
nontrivially if backed up, prioritized by the size of the change. When the top
pair in the queue is backed up, the effect on each of its predecessor pairs is
computed.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.75pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
15.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span
class=af7&gt;&lt;span lang=EN-US&gt;Prioritized sweeping for a deterministic environment&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:72.0pt;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
Q(s, a), Model(s, a), for all s, a, and PQueue to empty Do forever:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l48 level1 lfo33;tab-stops:46.8pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;(a)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;S \A1\AA current (nonterminal) state&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l48 level1 lfo33;tab-stops:46.8pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;(b)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;A \A1\AA policy(S, Q)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l48 level1 lfo33;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;(c)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;Execute action A; observe resultant
reward, R, and state, S&#39;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l48 level1 lfo33;tab-stops:46.8pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;(d)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Model(S, A) \A1\AA R, S&lt;span
class=afb&gt;&lt;sup&gt;f&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l48 level1 lfo33;tab-stops:46.8pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;(e)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=afb&gt;&lt;span lang=EN-US&gt;P&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; \A1\AA |R + y maxa Q(S&#39;,a) \A1\AA Q(S, A)|.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l48 level1 lfo33;tab-stops:46.8pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;(f)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;if P &amp;gt; 0, then insert S, A
into PQueue with priority P&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l48 level1 lfo33;tab-stops:46.8pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;(g)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Repeat n times, while PQueue is
not empty:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:48.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;S, A \A1\AA
first(PQueue)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:48.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;R,S&#39; \A1\AA
Model (S, A)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:91.0pt;margin-bottom:0cm;
margin-left:48.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Q(S, A) \A1\AA
Q(S, A) + a[R + &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; maxa Q(S &#39;,a) \A1\AA Q(S, A)] Repeat, for all S A predicted to lead to
S:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:66.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;R \A1\AA
predicted reward for S, A, S&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:66.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;P \A1\AA |R +
Ymaxa Q(S, a) \A1\AA Q&lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;(&lt;/span&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\BC\B0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;,&lt;/span&gt;&lt;span lang=EN-US&gt;Z)|.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:66.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;if P &amp;gt;
0 then insert S, &lt;span class=afff4&gt;jA&lt;/span&gt; into PQueue with priority P&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection187&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;If the effect is greater than
some small threshold, then the pair is inserted in the queue with the new
priority (if there is a previous entry of the pair in the queue, then insertion
results in only the higher priority entry remaining in the queue). In this way
the effects of changes are efficiently propagated backward until quiescence.
The full algorithm for the case of deterministic environments is given in the
box.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;Example 8.4:
Prioritized Sweeping on Mazes Prioritized sweeping has been found to
dramatically increase the speed at which optimal solutions are found in maze
tasks, often by a factor of 5 to 10. A typical example is shown in Figure 8.7.
These data are for a sequence of maze tasks of exactly the same structure as
the one shown in Figure 8.3, except that they vary in the grid resolution.
Prioritized sweeping maintained a decisive advantage over unprioritized Dyna-Q.
Both systems made at most n = 5 backups per environmental interaction.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:#141414;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection188&gt;

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     &lt;td&gt;&lt;![endif]&gt;
     &lt;div&gt;
     &lt;p class=117 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
     margin-left:7.0pt;margin-bottom:.0001pt;line-height:12.5pt;mso-line-height-rule:
     exactly;background:transparent&#39;&gt;&lt;span class=110ptExact0&gt;&lt;span lang=EN-US
     style=&#39;font-size:10.0pt;letter-spacing:0pt&#39;&gt;Backups&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
     &lt;p class=117 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
     margin-left:17.0pt;margin-bottom:.0001pt;line-height:12.5pt;mso-line-height-rule:
     exactly;background:transparent&#39;&gt;&lt;span class=110ptExact0&gt;&lt;span lang=EN-US
     style=&#39;font-size:10.0pt;letter-spacing:0pt&#39;&gt;until&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
     &lt;p class=117 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
     margin-left:7.0pt;margin-bottom:.0001pt;line-height:12.5pt;mso-line-height-rule:
     exactly;background:transparent&#39;&gt;&lt;span class=110ptExact0&gt;&lt;span lang=EN-US
     style=&#39;font-size:10.0pt;letter-spacing:0pt&#39;&gt;optimal&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
     &lt;p class=117 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
     margin-left:7.0pt;margin-bottom:.0001pt;line-height:12.5pt;mso-line-height-rule:
     exactly;background:transparent&#39;&gt;&lt;span class=110ptExact0&gt;&lt;span lang=EN-US
     style=&#39;font-size:10.0pt;letter-spacing:0pt&#39;&gt;solution&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
     &lt;/div&gt;
     &lt;![if !mso]&gt;&lt;/td&gt;
    &lt;/tr&gt;
   &lt;/table&gt;
   &lt;![endif]&gt;&lt;/v:textbox&gt;
  &lt;w:wrap anchorx=&#34;margin&#34;/&gt;
 &lt;/v:shape&gt;&lt;/o:wrapblock&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:33.9pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection189&gt;

&lt;p class=51d style=&#39;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;Example 8.5: Rod
Maneuvering The objective in this task is to maneuver a rod around some
awkwardly placed obstacles within a limited rectangular work space to a goal
position in the fewest number of steps (see Figure &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook0&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook0&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;). The rod can be translated along its long axis or perpendicular to
that axis, or it can be rotated in either direction around its center. The
distance of each movement is approximately 1/20 of the work space, and the
rotation increment is 10 degrees. Translations are deterministic and quantized
to one of 20 x 20 positions. The figure shows the obstacles and the shortest
solution from start to goal, found by prioritized sweeping. This problem is
still deterministic, but has four actions and 14,400 potential states (some of
these are unreachable because of the obstacles). This problem is probably too
large to be solved with unprioritized methods.&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br
clear=all style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:205.7pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=274 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=274 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:205.7pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_30&#34; o:spid=&#34;_x0000_i1093&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image71&#34;
   style=&#39;width:206.25pt;height:206.25pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image072.jpg&#34;
    o:title=&#34;image71&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=263 style=&#39;line-height:11.75pt;mso-line-height-rule:exactly;
  tab-stops:right 399.6pt;background:transparent;mso-element:frame;mso-element-frame-height:
  205.7pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span lang=EN-US&gt;Figure &lt;/span&gt;&lt;span class=26CenturySchoolbook&gt;&lt;span
  lang=EN-US style=&#39;font-weight:normal&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;span
  class=26CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
  lang=EN-US&gt;: A rod-maneuvering task and its solution by prioritized sweeping.
  Reprinted from Moore and Atkeson (1993).&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:26.95pt;margin-right:1.0pt;margin-bottom:
0cm;margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Extensions of prioritized sweeping to stochastic
environments are straightforward. The model is maintained by keeping counts of
the number of times each state-action pair has been experienced and of what the
next states were. It is natural then to backup each pair not with a sample
backup, as we have been using so far, but with a full backup, taking into
account all possible next states and their probabilities of occurring.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Prioritized sweeping is just
one way of distributing computations to improve plan&amp;shy;ning efficiency, and probably
not the best way. One of prioritized sweeping\A1\AFs limita&amp;shy;tions is that it uses &lt;span
class=afb&gt;full&lt;/span&gt; backups, which in stochastic environments may waste lots
of computation on low-probability transitions. As we show in the following
section, sample backups can in many cases get closer to the true value function
with less computation despite the variance introduced by sampling. Sample
backups can win because they break the overall backing-up computation into
smaller pieces\A1\AAthose corresponding to individual transitions\A1\AAwhich then enables
it to be focused more narrowly on the pieces that will have the largest impact.
This idea was taken to what may be its logical limit in the \A1\B0small backups\A1\B1
introduced by van Seijen and Sutton (2013). These are backups along a single
transition, like a sample backup, but based on the probability of the
transition without sampling, as in a full backup. By selecting the order in
which small backups are done it is possible to greatly improve planning
efficiency beyond that possible with prioritized sweeping.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;We have suggested in this chapter that all kinds of state-space
planning can be viewed as sequences of backups, varying only in the type of
backup, full or sample, large or small, and in the order in which the backups
are done. In this section we have emphasized backward focusing, but this is
just one strategy. For example, another would be to focus on states according
to how easily they can be reached from the states that are visited frequently
under the current policy, which might be called &lt;span class=afb&gt;forward focusing.&lt;/span&gt;
Peng and Williams (1993) and Barto, Bradtke and Singh (1995) have explored
versions of forward focusing, and the methods introduced in the next few
sections take it to an extreme form.&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l21 level1 lfo30;tab-stops:37.7pt;background:transparent&#39;&gt;&lt;a
name=bookmark130&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;8.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Full vs. Sample Backups&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The examples in the previous sections give some
idea of the range of possibilities for combining methods of learning and
planning. In the rest of this chapter, we analyze some of the component ideas
involved, starting with the relative advantages of full and sample backups.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
360.05pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Much of this book has been
about different kinds of backups, and we have con&amp;shy;sidered a great many
varieties. Focusing for the moment on one-step backups, they vary primarily
along three binary dimensions. The first two dimensions are whether they back
up state values or action values and whether they estimate the value for the
optimal policy or for an arbitrary given policy. These two dimensions give rise
to four classes of backups for approximating the four value functions, q^, v^,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;,
and .&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The other binary dimension is whether the backups
are &lt;span class=afb&gt;full&lt;/span&gt; backups, considering all possible events that
might happen, or &lt;span class=afb&gt;sample&lt;/span&gt; backups, considering a single
sample of what might happen. These three binary dimensions give rise to eight
cases, seven of which correspond to specific algorithms, as shown in Figure
8.9. (The eighth case does not seem to correspond to any useful backup.) Any of
these one-step backups can be used in planning methods. The Dyna-Q agents
discussed earlier use q^ sample backups, but they could just as well use &lt;/span&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\81\96&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;full backups, or
either full or sample &lt;/span&gt;&lt;span class=MingLiUff0&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;\C8\E7 &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;backups. The Dyna-AC system uses v^
sample backups together with a learning policy structure. For stochastic
problems, prioritized sweeping is always done using one of the full backups.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;When we introduced one-step sample backups in
Chapter &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, we presented them as substitutes for full backups. In the absence
of a distribution model, full backups are not possible, but sample backups can
be done using sample transitions from the environment or a sample model.
Implicit in that point of view is that full backups, if possible, are
preferable to sample backups. But are they? Full backups certainly yield a
better estimate because they are uncorrupted by sampling error, but they also
require more computation, and computation is often the limiting resource in
planning. To properly assess the relative merits of full and sample backups for
planning we must control for their different computational requirements.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;For concreteness, consider the full and sample backups for
approximating q^, and the special case of discrete states and actions, a
table-lookup representation of the approximate value function, Q, and a model
in the form of estimated dynamics, p(s&lt;/span&gt;&lt;span class=MingLiUff0&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A1\A2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;r|s, a). The full backup for a state-action pair, s, a, is:&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-left:28.0pt;line-height:9.5pt;mso-line-height-rule:
exactly;tab-stops:right 146.3pt 398.55pt;background:transparent&#39;&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt;Q(s, a)&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;p(s&lt;/span&gt;&lt;/span&gt;&lt;span
class=51MingLiU&gt;&lt;span style=&#39;font-size:6.0pt;font-weight:normal&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt;r|s,a) r + &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook0&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt; m^xQ(s&lt;sup&gt;;&lt;/sup&gt;, a&lt;sup&gt;;&lt;/sup&gt;) .&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook0&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook0&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:#141414;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

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lang=EN-US&gt;(s)&lt;sup&gt;u&lt;/sup&gt;A&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;p&gt;&lt;i&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
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&lt;div class=WordSection195&gt;

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lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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5.35pt;margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection196&gt;

&lt;p class=611 style=&#39;margin-left:48.0pt;tab-stops:right 225.6pt 356.6pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;(Cl &lt;/span&gt;&lt;span class=61MingLiU&gt;&lt;span
style=&#39;font-size:10.0pt;mso-ansi-language:ZH-TW&#39;&gt;\81A&lt;/span&gt;&lt;/span&gt;&lt;span
class=61105pt&gt;&lt;span style=&#39;font-size:10.5pt;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=61105pt&gt;&lt;span lang=EN-US style=&#39;font-size:10.5pt&#39;&gt;dajs-auo)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(da)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;pajBiujisa&lt;/span&gt;&lt;/p&gt;

&lt;p class=117 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:83.85pt;
margin-left:41.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
11.3pt;mso-line-height-rule:exactly;tab-stops:179.7pt right 356.6pt;background:
transparent&#39;&gt;&lt;span class=111&gt;&lt;span lang=EN-US&gt;sdn&amp;gt;)&lt;/span&gt;&lt;/span&gt;&lt;span
class=11Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:10.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=111&gt;&lt;span lang=EN-US&gt;Bq a|diues&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;sdnqoeq
||nj&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;9n|e&lt;/span&gt;&lt;/span&gt;&lt;span
class=11MingLiU&gt;&lt;span style=&#39;font-size:10.0pt;mso-ansi-language:ZH-TW&#39;&gt;\B0\CB&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=621 style=&#39;margin-top:0cm;line-height:11.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;SQ0H13H yvmavi H1IM DMIMUV31
QMV DMIMMVld &lt;sup&gt;f&lt;/sup&gt;8 midVHD&lt;/span&gt;&lt;span class=62CenturyGothic&gt;&lt;span
lang=EN-US style=&#39;font-size:10.0pt;font-style:normal&#39;&gt; 88T&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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mso-fareast-font-family:&#34;Franklin Gothic Medium&#34;;mso-bidi-font-family:&#34;Franklin Gothic Medium&#34;;
color:black;letter-spacing:-.5pt;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/i&gt;&lt;/p&gt;

&lt;div class=WordSection197&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:17.2pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The corresponding sample backup for s, a, given a sample next state
and reward, S&#39; and R (from the model), is the Q-learning-like update:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:7.2pt;mso-line-height-rule:exactly;
tab-stops:right 401.55pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Q(s, a) \A1\AA
Q(s, a) + a R + &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;maxQ(S&#39;, a&#39;) \A1\AA Q(s, a) ,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.15pt;
margin-left:133.0pt;line-height:7.2pt;mso-line-height-rule:exactly;tab-stops:
center 175.5pt right 280.35pt;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;L&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=219&gt;&lt;span lang=EN-US&gt;a&#39;&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU1&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;\A1\B9&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:1.25pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;where a is the usual positive
step-size parameter.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:right 357.6pt 401.55pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The difference between these full and sample backups is significant
to the extent that the environment is stochastic, specifically, to the extent
that, given a state and action, many possible next states may occur with
various probabilities.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;If&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;only one&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
center 326.4pt 340.55pt right 401.55pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;next state is possible, then the full and sample backups given&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;above&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;are&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;identical&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;(taking a = 1). If there are many
possible next states, then there may be significant differences. In favor of
the full backup is that it is an exact computation, resulting in a new Q(s, a)
whose correctness is limited only by the correctness of the Q(s&#39;, a&#39;) at
successor states. The sample backup is in addition affected by sampling error.
On the other hand, the sample backup is cheaper computationally because it
considers only one next state, not all possible next states. In practice, the
computation required by backup operations is usually dominated by the number of
state-action pairs at which Q is evaluated. For a particular starting pair, s,
a, let b be the &lt;span class=afb&gt;branching factor&lt;/span&gt; (i.e., the number of
possible next states, s&#39;, for which p(s&#39;|s,a) &amp;gt; 0). Then a full backup of
this pair requires roughly b times as much computation as a sample backup.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If there is enough time to complete
a full backup, then the resulting estimate is generally better than that of b
sample backups because of the absence of sampling error. But if there is
insufficient time to complete a full backup, then sample backups are always
preferable because they at least make some improvement in the value estimate
with fewer than b backups. In a large problem with many state-action pairs, we
are often in the latter situation. With so many state-action pairs, full
backups of all of them would take a very long time. Before that we may be much
better off with a few sample backups at many state-action pairs than with full
backups at a few pairs. Given a unit of computational effort, is it better
devoted to a few full backups or to b times as many sample backups?&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Figure 8.10 shows the results
of an analysis that suggests an answer to this ques&amp;shy;tion. It shows the
estimation error as a function of computation time for full and sample backups
for a variety of branching factors, b. The case considered is that in which all
b successor states are equally likely and in which the error in the initial
estimate is 1. The values at the next states are assumed correct, so the full
backup reduces the error to zero upon its completion. In this case, sample
backups reduce&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;the error according to&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\A2&lt;span
lang=ZH-TW&gt;/ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;where t is the number of sample
backups that have been&lt;/span&gt;&lt;/p&gt;

&lt;p class=208 style=&#39;margin-left:117.0pt;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=204&gt;&lt;span lang=EN-US&gt;~bT&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;performed (assuming sample averages,
i.e., a = 1/t). The key observation is that for moderately large b the error
falls dramatically with a tiny fraction of b backups. For these cases, many
state-action pairs could have their values improved dramatically, to within a
few percent of the effect of a full backup, in the same time that one
state-action pair could be backed up fully.&lt;/span&gt;&lt;/p&gt;

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    &lt;p class=343 align=left style=&#39;margin:0cm;margin-bottom:.0001pt;text-align:
    left;line-height:11.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=340ptExact0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:
    0pt&#39;&gt;Number of max &lt;/span&gt;&lt;/span&gt;&lt;span class=34Batang0&gt;&lt;span lang=EN-US
    style=&#39;font-size:11.0pt;letter-spacing:-1.5pt;font-weight:normal&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span
    class=340ptExact0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:
    0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=34Batang0&gt;&lt;span lang=EN-US
    style=&#39;font-size:11.0pt;letter-spacing:-1.5pt;font-weight:normal&#39;&gt;s&lt;sup&gt;f&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
    class=340ptExact0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:
    0pt&#39;&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=34Batang0&gt;&lt;span lang=EN-US
    style=&#39;font-size:11.0pt;letter-spacing:-1.5pt;font-weight:normal&#39;&gt;a!&lt;/span&gt;&lt;/span&gt;&lt;span
    class=340ptExact0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:
    0pt&#39;&gt;) computations&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=630 style=&#39;margin-left:58.0pt;line-height:10.0pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=63CenturySchoolbook&gt;&lt;span
    lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;0&lt;/span&gt;&lt;/sup&gt;&lt;/p&gt;
    &lt;/div&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;The advantage of sample backups shown in Figure 8.10
is probably an underesti&amp;shy;mate of the real effect. In a real problem, the values
of the successor states would&lt;br clear=all style=&#39;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;themselves be
estimates updated by backups. By causing estimates to be more accu&amp;shy;rate sooner,
sample backups will have a second advantage in that the values backed up from
the successor states will be more accurate. These results suggest that sample
backups are likely to be superior to full backups on problems with large
stochastic branching factors and too many states to be solved exactly.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l21 level1 lfo30;tab-stops:36.5pt;background:transparent&#39;&gt;&lt;a
name=bookmark134&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;8.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Trajectory Sampling&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;In this
section we compare two ways of distributing backups. The classical approach,
from dynamic programming, is to perform sweeps through the entire state (or
state- action) space, backing up each state (or state-action pair) once per
sweep. This is problematic on large tasks because there may not be time to
complete even one sweep. In many tasks the vast majority of the states are irrelevant
because they are visited only under very poor policies or with very low
probability. Exhaustive sweeps implicitly devote equal time to all parts of the
state space rather than focusing where it is needed. As we discussed in Chapter
4, exhaustive sweeps and the equal treatment of all states that they imply are
not necessary properties of dynamic programming. In principle, backups can be
distributed any way one likes (to assure convergence, all states or
state-action pairs must be visited in the limit an infinite number of times;
although an exception to this is discussed in Section 8.7 below), but in
practice exhaustive sweeps are often used.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;The second approach is to sample from the state or state-action
space according to some distribution. One could sample uniformly, as in the
Dyna-Q agent, but this would suffer from some of the same problems as
exhaustive sweeps. More appealing is to distribute backups according to the
on-policy distribution, that is, according to the distribution observed when following
the current policy. One advantage of &lt;/span&gt;&lt;/span&gt;&lt;span class=ac&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;this distribution is that it is easily
generated; one simply interacts with the model, following the current policy.
In an episodic task, one starts in a start state (or according to the
starting-state distribution) and simulates until the terminal state. In a
continuing task, one starts anywhere and just keeps simulating. In either case,
sample state transitions and rewards are given by the model, and sample actions
are given by the current policy. In other words, one simulates explicit
individual trajectories and performs backups at the state or state-action pairs
encountered along the way. We call this way of generating experience and
backups &lt;/span&gt;&lt;/span&gt;&lt;span class=afb&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;trajectory
sampling&lt;/span&gt;&lt;/span&gt;&lt;span class=ac&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;It is hard to imagine any
efficient way of distributing backups according to the on-policy distribution
other than by trajectory sampling. If one had an explicit rep&amp;shy;resentation of
the on-policy distribution, then one could sweep through all states, weighting
the backup of each according to the on-policy distribution, but this leaves us
again with all the computational costs of exhaustive sweeps. Possibly one could
sample and update individual state-action pairs from the distribution, but even
if this could be done efficiently, what benefit would this provide over
simulating trajec&amp;shy;tories? Even knowing the on-policy distribution in an
explicit form is unlikely. The distribution changes whenever the policy
changes, and computing the distribution requires computation comparable to a
complete policy evaluation. Consideration of such other possibilities makes
trajectory sampling seem both efficient and elegant.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Is the on-policy distribution
of backups a good one? Intuitively it seems like a good choice, at least better
than the uniform distribution. For example, if you are learning to play chess,
you study positions that might arise in real games, not random positions of
chess pieces. The latter may be valid states, but to be able to accurately
value them is a different skill from evaluating positions in real games. We
will also see in Chapter 9 that the on-policy distribution has significant
advantages when function approximation is used. Whether or not function
approximation is used, one might expect on-policy focusing to significantly
improve the speed of planning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Focusing on the on-policy
distribution could be beneficial because it causes vast, uninteresting parts of
the space to be ignored, or it could be detrimental because it causes the same
old parts of the space to be backed up over and over. We conducted a small
experiment to assess the effect empirically. To isolate the effect of the
backup distribution, we used entirely one-step full tabular backups, as defined
by (8.1). In the &lt;span class=afb&gt;uniform&lt;/span&gt; case, we cycled through all
state-action pairs, backing up each in place, and in the &lt;span class=afb&gt;on-policy&lt;/span&gt;
case we simulated episodes, all starting in the same state, backing up each
state-action pair that occurred under the current e-greedy policy (e = &lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;). The tasks were undiscounted episodic tasks, generated randomly as
follows. From each of the |S| states, two actions were possible, each of which
resulted in one of b next states, all equally likely, with a different random
selection of b states for each state-action pair. The branching factor, b, was
the same for all state-action pairs. In addition, on all transitions there was
a &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0.1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; probability of transition to the terminal state, ending the
episode. We used episodic tasks to get a clear measure of the quality of the
current policy. At any point in the planning process one can stop and
exhaustively compute vn(so), the true value of the start state under the greedy&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
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ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection198&gt;

&lt;p class=117 align=center style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:4.0pt;margin-bottom:.0001pt;text-align:center;line-height:12.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_517&#34;
 o:spid=&#34;_x0000_s1426&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image77&#34; style=&#39;position:absolute;
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 height:186.7pt;z-index:251806506;visibility:visible;mso-wrap-style:square;
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 mso-wrap-distance-bottom:0;mso-position-horizontal:absolute;
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 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image078.jpg&#34;
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 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=111&gt;&lt;span lang=EN-US&gt;Value of start state under greedy
policy&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:10.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection199&gt;

&lt;p class=MsoNormal style=&#39;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;margin-top:2.05pt;margin-right:0cm;margin-bottom:
2.05pt;margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
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&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection200&gt;

&lt;p class=117 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;line-height:10.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=111&gt;&lt;span
lang=EN-US&gt;Computation time, in full backups&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:10.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
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AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection201&gt;

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&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.55pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection202&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;policy,&lt;/span&gt;&lt;span class=MingLiUff0&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;\D8\C1&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A3\AC&lt;/span&gt;&lt;span
lang=EN-US&gt;given the current action-value function Q, as an indication of how
well the agent would do on a new episode on which it acted greedily (all the while
assuming the model is correct).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The upper part of Figure 8.11 shows results
averaged over 200 sample tasks with 1000 states and branching factors of 1, 3,
and 10. The quality of the policies found is plotted as a function of the
number of full backups completed. In all cases, sam&amp;shy;pling according to the
on-policy distribution resulted in faster planning initially and retarded
planning in the long run. The effect was stronger, and the initial period of
faster planning was longer, at smaller branching factors. In other experiments,
we found that these effects also became stronger as the number of states
increased. For example, the lower part of Figure 8.11 shows results for a
branching factor of 1 for tasks with 10,000 states. In this case the advantage
of on-policy focusing is large and long-lasting.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;All of these results make sense. In the short term, sampling
according to the on-policy distribution helps by focusing on states that are
near descendants of the start state. If there are many states and a small
branching factor, this effect will be large and long-lasting. In the long run,
focusing on the on-policy distribution may hurt because the commonly occurring
states all already have their correct values. Sampling them is useless, whereas
sampling other states may actually perform some useful work. This presumably is
why the exhaustive, unfocused approach does better in the long run, at least
for small problems. These results are not conclusive because they are only for
problems generated in a particular, random way, but they do suggest that
sampling according to the on-policy distribution can be a great advantage for
large problems, in particular for problems in which a small subset of the
state-action space is visited under the on-policy distribution.&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.05pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l21 level1 lfo30;tab-stops:37.5pt;background:transparent&#39;&gt;&lt;a
name=bookmark135&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;8.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Real-time Dynamic Programming&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afb&gt;&lt;span lang=EN-US&gt;Real-time dynamic programming&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, or RTDP, is an on-policy trajectory-sampling ver&amp;shy;sion of DP\A1\AFs
value-iteration algorithm. Because it is closely related to conventional
sweep-based policy iteration, RTDP illustrates in a particularly clear way some
of the advantages that on-policy trajectory sampling can provide. RTDP backs up
the values of states visited in actual or simulated trajectories by means of
full tabu&amp;shy;lar value-iteration backups as defined by (4.10). It is basically the
algorithm that produced the on-policy results shown in Figure 8.11.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The close connection between RTDP and
conventional DP makes it possible to derive some theoretical results by
adapting existing theory. RTDP is an example of an &lt;span class=afb&gt;asynchronous&lt;/span&gt;
DP algorithm as described in Section 4.5. Asynchronous DP algorithms are not
organized in terms of systematic sweeps of the state set; they back up state
values in any order whatsoever, using whatever values of other states happen to
be available. In RTDP, the backup order is dictated by the order states are
visited in real or simulated trajectories.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;If trajectories can start only from a designated
set of start states, and if you are&lt;br clear=all style=&#39;page-break-before:always&#39;&gt;
interested in the prediction problem for a given policy, then on-policy
trajectory sampling allows the algorithm to completely skip states that cannot
be reached by the given policy from any of the start states: unreachable states
are irrelevant to the prediction problem. For a control problem, where the goal
is to find an optimal policy instead of evaluating a given policy, there might
well be states that cannot be reached by any optimal policy from any of the
start states, and there is no need to specify optimal actions for these
irrelevant states. What is needed is an &lt;span class=afb&gt;optimal partial policy&lt;/span&gt;,
meaning a policy that is optimal for the relevant states but can specify
arbitrary actions, or even be undefined, for the irrelevant states (see the
illustration below).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:23.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;tab-stops:center 332.2pt right 377.1pt;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;But &lt;span class=afb&gt;finding&lt;/span&gt; such an opti&amp;shy;mal
partial policy with an on-&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSf1&gt;&lt;span lang=EN-US style=&#39;font-size:6.5pt;letter-spacing:
0pt&#39;&gt;irrelevant&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;States&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUff4&gt;&lt;span style=&#39;font-size:6.0pt&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=640 style=&#39;margin-left:1.0pt;tab-stops:295.25pt;background:transparent&#39;&gt;&lt;span
class=64Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;policy trajectory-sampling
con-&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;unreachable from any start state&lt;/span&gt;&lt;/sup&gt;&lt;/p&gt;

&lt;p class=640 align=left style=&#39;margin-left:308.0pt;text-align:left;line-height:
5.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;under
any optimal policy&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;v:shape
 id=&#34;Picture_x0020_512&#34; o:spid=&#34;_x0000_s1421&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image79&#34;
 style=&#39;position:absolute;left:0;text-align:left;margin-left:198.95pt;
 margin-top:6.25pt;width:154.1pt;height:91.2pt;z-index:251807530;visibility:visible;
 mso-wrap-style:square;mso-width-percent:0;mso-height-percent:0;
 mso-wrap-distance-left:5pt;mso-wrap-distance-top:0;mso-wrap-distance-right:5pt;
 mso-wrap-distance-bottom:0;mso-position-horizontal:absolute;
 mso-position-horizontal-relative:margin;mso-position-vertical:absolute;
 mso-position-vertical-relative:text;mso-width-percent:0;mso-height-percent:0;
 mso-width-relative:page;mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image080.jpg&#34;
  o:title=&#34;image79&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;trol method, such as Sarsa&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:8.9pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;(Section 6&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;.&lt;sup&gt;4)&lt;/sup&gt;, &lt;sup&gt;in&lt;/sup&gt;
g&lt;sup&gt;eneral&lt;/sup&gt; &lt;/span&gt;&lt;span class=ArialUnicodeMSf1&gt;&lt;span lang=EN-US
style=&#39;font-size:6.5pt;letter-spacing:0pt&#39;&gt;Start States &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;requires visiting all state-&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:56.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;action pairs\A1\AAeven those that will turn out to be
irrelevant\A1\AA an infinite number of times.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;This can be done, for exam&amp;shy;ple, by using
exploring starts (Section 5.3). This is true for RTDP as well: for episodic
tasks with exploring starts, RTDP is an asynchronous value-iteration algorithm
that converges to optimal polices for discounted finite MDPs (and for the
undiscounted case under certain conditions). Unlike the situ&amp;shy;ation for a
prediction problem, it is generally not possible to stop backing up any state
or state-action pair if convergence to an optimal policy is important.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The most interesting result for RTDP is that for
certain types of problems sat&amp;shy;isfying reasonable conditions, RTDP is guaranteed
to find a policy that is optimal on the relevant states without visiting every
state infinitely often, or even without visiting some states at all. Indeed, in
some problems, only a small fraction of the states need to be visited. This can
be a great advantage for problems with very large state sets, where even a
single sweep may not be feasible.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The tasks for which this result holds are
undiscounted episodic tasks for MDPs with absorbing goal states that generate
zero rewards, as described in Section 3.4. At every step of a real or simulated
trajectory, RTDP selects a greedy action (breaking ties randomly) and applies
the full value-iteration backup operation to the current state. It can also
backup the values of an arbitrary collection of other states at each step; for
example, it can backup the values of states visited in a limited-horizon
look-ahead search from the current state.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;For these problems, with each episode beginning
in a state randomly chosen from the set of start states, and ending at a goal
state, RTDP converges (with probability one) to a policy that is optimal for
all the relevant states&lt;/span&gt;&lt;a style=&#39;mso-footnote-id:ftn13&#39; href=&#34;#_ftn13&#34;
name=&#34;_ftnref13&#34; title=&#34;&#34;&gt;&lt;span class=9pt5&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=9pt5&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[13]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
lang=EN-US&gt; provided the following &lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection203&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;conditions are satisfied: &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook0&gt;&lt;span lang=EN-US&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;) the initial value of every goal state is zero, &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook0&gt;&lt;span lang=EN-US&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;) there exists at least one policy that guarantees that a goal state
will be reached with probability one from any start state, 3) all rewards for
transitions from non-goal states are strictly negative, and 4) all the initial
values are equal to, or greater than, their optimal values (which can be
satisfied by simply setting the initial values of all states to zero). This
result was proved by Barto, Bradtke, and Singh (1995) by combining results for
asynchronous DP with results about a heuristic search algorithm known as &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang5&gt;&lt;span lang=EN-US&gt;learning real-time A*&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;due to Korf (1990).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;Tasks having these properties are examples of &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang5&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;stochastic optimal
path problems&lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;, which are usually
stated in terms of cost minimization instead as reward maximiza&amp;shy;tion, as we do
here. Maximizing the negative returns in our version is equivalent to
minimizing the costs of paths from a start state to a goal state. Examples of
this kind of task are minimum-time control tasks, where each time step required
to reach a goal produces a reward of \A1\AA1, or problems like the Golf example in
Section 3.7, whose objective is to hit the hole with the fewest strokes.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;Example &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook0&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook0&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;: RTDP on the Racetrack The racetrack problem of Exercise 5.7 in
Section 5.7 is a stochastic optimal path problem. Comparing RTDP and the con&amp;shy;ventional
DP value iteration algorithm on an example racetrack problem illustrates some
of the advantages of on-policy trajectory sampling.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;Recall from the exercise that an agent has to learn how to drive a
car around a turn like those shown in Figure 5.6 and cross the finish line as
quickly as possible while staying on the track. Start states are all the
zero-speed states on the starting line; the goal states are all the states that
can be reached in one time step by crossing the finish line from inside the
track. Unlike Exercise 5.7, here there is no limit on the car\A1\AFs speed, so the
state set is potentially infinite. However, the set of states that can be
reached from the set of start states via any policy is finite and can be
considered to be the state set of the problem. Each episode begins in a
randomly selected start state and ends when the car crosses the finish line.
The rewards are \A1\AA1 for each step until the car crosses the finish line. If the
car hits the track boundary, it is moved back to a random start state, and the
episode continues.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;A racetrack similar to the small racetrack on the left of Figure 5.6
has 9,115 states reachable from start states by any policy, only 599 of which
are relevant, meaning that they are reachable from some start state via some
optimal policy. (The number of relevant states was estimated by counting the
states visited while executing optimal actions for &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook0&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;10&lt;sup&gt;7&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt; episodes.)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.35pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;The table below
compares solving this task by conventional DP and by RTDP. These results are
averages over 25 runs, each begun with a different random number seed.
Conventional DP in this case is value iteration using exhaustive sweeps of the
state set, with values backed up one state at a time in place, meaning that the
update for each state uses the most recent values of the other states (This is
the Gauss-Seidel version of value iteration, which was found to be
approximately twice as fast as the Jacobi version on this problem. See Section
4.8.) No special attention was paid to&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;line-height:8.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;greedy actions.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.3pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;the ordering of the updates;
other orderings could have produced faster convergence. Initial values were all
zero for each run of both methods. DP was judged to have converged when the
maximum change in a state value over a sweep was less than 10&lt;sup&gt;-4&lt;/sup&gt;, and
RTDP was judged to have converged when the average time to cross the finish
line over &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;20&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;
episodes appeared to stabilize at an asymptotic number of steps. This version
of RTDP backed up only the value of the current state on each step.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div align=center&gt;

&lt;table class=MsoNormalTable border=0 cellspacing=0 cellpadding=0
 style=&#39;border-collapse:collapse;mso-table-layout-alt:fixed;mso-table-overlap:
 never;mso-padding-alt:0cm .5pt 0cm .5pt&#39;&gt;
 &lt;tr style=&#39;mso-yfti-irow:0;mso-yfti-firstrow:yes;height:13.2pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;td width=286 valign=top style=&#39;width:214.8pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.2pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:346.1pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=78 valign=top style=&#39;width:58.3pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.2pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:8.0pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:346.1pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;DP&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=97 valign=top style=&#39;width:72.95pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.2pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=right style=&#39;margin-right:3.0pt;text-align:right;
  text-indent:0cm;line-height:8.0pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:346.1pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;RTDP&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:1;height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=286 valign=top style=&#39;width:214.8pt;border:none;border-top:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:8.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:346.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Average
  computation to convergence&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=78 valign=top style=&#39;width:58.3pt;border:none;border-top:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:8.0pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:346.1pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;28 sweeps&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=97 valign=top style=&#39;width:72.95pt;border:none;border-top:solid windowtext 1.0pt;
  mso-border-top-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=right style=&#39;margin-right:3.0pt;text-align:right;
  text-indent:0cm;line-height:8.0pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:346.1pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;4000
  episodes&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:2;height:13.45pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=286 valign=top style=&#39;width:214.8pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.45pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:8.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:346.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Average
  number of backups to convergence&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=78 valign=top style=&#39;width:58.3pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.45pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:8.0pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:346.1pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;252,784&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=97 valign=top style=&#39;width:72.95pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.45pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=right style=&#39;margin-right:3.0pt;text-align:right;
  text-indent:0cm;line-height:8.0pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:346.1pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;127,600&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:3;height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=286 valign=top style=&#39;width:214.8pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:8.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:346.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Average
  number of backups per episode&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=78 valign=top style=&#39;width:58.3pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.0pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:346.1pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=MingLiUf6&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=97 valign=top style=&#39;width:72.95pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=right style=&#39;margin-right:3.0pt;text-align:right;
  text-indent:0cm;line-height:8.0pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:346.1pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;31.9&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:4;height:12.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=286 valign=top style=&#39;width:214.8pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:8.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:346.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;% of states
  backed up &amp;lt; &lt;/span&gt;&lt;/span&gt;&lt;span class=75pt2&gt;&lt;span lang=EN-US
  style=&#39;font-size:7.5pt&#39;&gt;100&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
  lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; times&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=78 valign=top style=&#39;width:58.3pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.0pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:346.1pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=MingLiUf6&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=97 valign=top style=&#39;width:72.95pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:12.7pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=right style=&#39;margin-right:3.0pt;text-align:right;
  text-indent:0cm;line-height:8.0pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:346.1pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;98.45&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:5;height:13.45pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=286 valign=top style=&#39;width:214.8pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.45pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:8.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:346.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;% of states
  backed up &amp;lt; &lt;/span&gt;&lt;/span&gt;&lt;span class=75pt2&gt;&lt;span lang=EN-US
  style=&#39;font-size:7.5pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span
  lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; times&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=78 valign=top style=&#39;width:58.3pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.45pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.0pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:346.1pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=MingLiUf6&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=97 valign=top style=&#39;width:72.95pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.45pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=right style=&#39;margin-right:3.0pt;text-align:right;
  text-indent:0cm;line-height:8.0pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:346.1pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;80.51&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:6;mso-yfti-lastrow:yes;height:13.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;td width=286 valign=top style=&#39;width:214.8pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.9pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:8.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:346.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;% of states
  backed up &lt;/span&gt;&lt;/span&gt;&lt;span class=75pt2&gt;&lt;span lang=EN-US style=&#39;font-size:
  7.5pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbook7&gt;&lt;span lang=EN-US
  style=&#39;font-size:8.0pt&#39;&gt; times&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=78 valign=top style=&#39;width:58.3pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.9pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.0pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:346.1pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=MingLiUf6&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=97 valign=top style=&#39;width:72.95pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:13.9pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=right style=&#39;margin-right:3.0pt;text-align:right;
  text-indent:0cm;line-height:8.0pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:346.1pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;3.18&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:9.15pt;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:12.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;Both methods produced policies averaging between 14 and 15 steps to
cross the finish line, but RTDP required only roughly half of the backups that
DP did. This is the result of RTDP\A1\AFs on-policy trajectory sampling. Whereas the
value of every state was backed up in each sweep of DP, RTDP focused backups on
fewer states. In an average run, RTDP backed up the costs of %98.45 of the
states no more than 100 times and %80.51 of the states no more than 10 times;
the values of about 290 states were not backed up at all in an average run.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:12.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;Another advantage of RTDP over conventional value iteration is that
with RTDP as the value function approaches the optimal value function, &lt;/span&gt;&lt;/span&gt;&lt;span
class=219&gt;&lt;span lang=EN-US&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;*,
the policy used by the agent to generate trajectories approaches an optimal
policy because it is always greedy with respect to the current value function.
This is in contrast to the situation in conventional value iteration. In
practice, value iteration terminates when the value function changes by only a
small amount in a sweep, which is how we terminated it to obain the results in
the table above. At this point, the value function closely approximates V*, and
a greedy policy is close to an optimal policy. However, it is possible that
policies that are greedy with respect to the latest value function were
optimal, or nearly so, long before value iteration terminates. (Recall from
Chapter 4 that optimal policies can be greedy with respect to many different
value functions, not just V*.) Checking for the emergence of an optimal policy
before value iteration converges is not a part of the conventional DP algorithm
and requires a considerable amount of extra computation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:12.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;In the racetrack example, by running many test episodes after each
DP sweep, with actions selected greedily according to the result of that sweep,
it was possible to estimate the earliest point in the DP computation at which
the approximated optimal evaluation function was good enough so that the
corresponding greedy policy was nearly optimal. For this racetrack, a
close-to-optimal policy emerged after 15 sweeps of value iteration, or after
136,725 value iteration backups. This is considerably less than the 252,784
backups DP needed to converge to V*, but sill more than the 127,600 backups
RTDP required.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:42.8pt;
margin-left:1.0pt;text-indent:12.0pt;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;Although these
simulations are certainly not definitive comparisons of the RTDP &lt;/span&gt;&lt;/span&gt;&lt;span
class=ac&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;with conventional sweep-based
value iteration, they illustrate some of advantages of on-policy trajectory
sampling. Whereas conventional value iteration continued to back up the value
of all the states, RTDP strongly focused on subsets of the states that were
relevant to the problem\A1\AFs objective. This focus became increasingly narrow as
learning continued. Because the convergence theorem for RTDP applies to the
simulations, we know that RTDP eventually would have focused only on relevant
states, i.e., on states making up optimal paths. RTDP achieved nearly optimal
control with about 50% of the computation required by sweep-based value
iteration.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l21 level1 lfo30;tab-stops:36.5pt;background:transparent&#39;&gt;&lt;a
name=bookmark136&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;8.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Planning at Decision Time&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Planning can be used in at least two
ways. The one we have considered so far in this chapter, typified by dynamic
programming and Dyna, is to use planning to gradually improve a policy or value
function on the basis of simulated experience obtained from a model (either a
sample or a distribution model). Selecting actions is then a matter of
comparing the current state\A1\AFs action values obtained from a table in the
tabular case we have thus far considered, or by evaluating a mathematical
expression in the approximate methods we consider in Part II below. Well before
an action is selected for any current state St, planning has played a part in
improving the table entries, or the mathematical expression, needed to select
the action for many states, including St. Used this way, planning is not
focussed on the current state. We call planning used in this way &lt;span
class=afb&gt;background planning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The other way to use planning
is to begin and complete it &lt;span class=afb&gt;after&lt;/span&gt; encountering each new
state St, as a computation whose output is the selection of a single action At&lt;/span&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BB &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;on the next step planning begins anew with St+i to produce At+i, and
so on. The simplest, and almost degenerate, example of this use of planning is
when only state values are available, and an action is selected by comparing
the values of model- predicted next states for each action (or by comparing the
values of afterstates as in the tic-tac-toe example in Chapter 1). More
generally, planning used in this way can look much deeper than one-step-ahead
and evaluate action choices leading to many different predicted state and
reward trajectories. Unlike the first use of planning, here planning focusses
on a particular state. We call this &lt;span class=afb&gt;decision-time planning&lt;/span&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;These two ways of thinking
about planning\A1\AAusing simulated experience to grad&amp;shy;ually improve a policy or
value function, or using simulated experience to select an action for the
current state\A1\AAcan blend together in natural and interesting ways, but they have
tended to be studied separately, and that is a good way to first understand
them. Let us now take a closer look at decision-time planning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Even when planning is only done at decision time, we can still view
it, as we did in Section 8.1, as proceeding from simulated experience to
backups and values, and ultimately to a policy. It is just that now the values
and policy are specific to the current state and the action choices available
there, so much so that the values and policy created by the planning process
are typically discarded after being used to select the current action. In many
applications this is not a great loss because there are very many states and we
are unlikely to return to the same state for a long time. In general, one may
want to do a mix of both: focus planning on the current state &lt;span class=afb&gt;and&lt;/span&gt;
store the results of planning so as to be that much farther along should one
return to the same state later. Decision-time planning is most useful in
applications in which fast responses are not required. In chess playing
programs, for example, one may be permitted seconds or minutes of computation
for each move, and strong programs may plan dozens of moves ahead within this
time. On the other hand, if low latency action selection is the priority, then
one is generally better off doing planning in the background to compute a
policy that can then be rapidly applied to each newly encountered state.&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l21 level1 lfo30;tab-stops:36.7pt;background:transparent&#39;&gt;&lt;a
name=bookmark137&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;8.9&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Heuristic Search&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The classical state-space planning
methods in artificial intelligence are decision-time planning methods
collectively known as &lt;span class=afb&gt;heuristic search&lt;/span&gt;. In heuristic
search, for each state encountered, a large tree of possible continuations is
considered. The approximate value function is applied to the leaf nodes and
then backed up toward the current state at the root. The backing up within the
search tree is just the same as in the full backups with maxes (those for v&lt;/span&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ľ&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;and q^) discussed
throughout this book. The backing up stops at the state-action nodes for the
current state. Once the backed-up values of these nodes are computed, the best
of them is chosen as the current action, and then all backed-up values are
discarded.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In conventional heuristic
search no effort is made to save the backed-up values by changing the
approximate value function. In fact, the value function is generally designed
by people and never changed as a result of search. However, it is natural to
consider allowing the value function to be improved over time, using either the
backed-up values computed during heuristic search or any of the other methods
presented throughout this book. In a sense we have taken this approach all
along. Our greedy, e-greedy, and UCB (Section 2.7) action-selection methods are
not unlike heuristic search, albeit on a smaller scale. For example, to compute
the greedy action given a model and a state-value function, we must look ahead
from each possible action to each possible next state, backup the rewards and
estimated values, and then pick the best action. Just as in conventional
heuristic search, this process computes backed-up values of the possible actions,
but does not attempt to save them. Thus, heuristic search can be viewed as an
extension of the idea of a greedy policy beyond a single step.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The point of searching deeper
than one step is to obtain better action selections. If one has a perfect model
and an imperfect action-value function, then in fact deeper search will usually
yield better policies&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;.&lt;a style=&#39;mso-footnote-id:ftn14&#39; href=&#34;#_ftn14&#34; name=&#34;_ftnref14&#34;
title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=9pt5&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[14]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; Certainly, if the search is all the way to the end of the episode,
then the effect of the imperfect value function is eliminated, and the action
determined in this way must be optimal. If the search is of sufficient &lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection204&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;depth &lt;span class=afb&gt;k&lt;/span&gt;
such that &lt;/span&gt;&lt;span class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:
ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span
lang=EN-US&gt;is very small, then the actions will be correspondingly near
optimal. On the other hand, the deeper the search, the more computation is
required, usually resulting in a slower response time. A good example is
provided by Tesauro\A1\AFs grandmaster-level backgammon player, TD-Gammon (Section
16.1). This system used TD learning to learn an afterstate value function
through many games of self&amp;shy;play, using a form of heuristic search to make its
moves. As a model, TD-Gammon used a priori knowledge of the probabilities of
dice rolls and the assumption that the opponent always selected the actions
that TD-Gammon rated as best for it. Tesauro found that the deeper the
heuristic search, the better the moves made by TD-Gammon, but the longer it
took to make each move. Backgammon has a large branching factor, yet moves must
be made within a few seconds. It was only feasible to search ahead selectively
a few steps, but even so the search resulted in significantly better action
selections.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;We should not overlook the
most obvious way in which heuristic search focuses backups: on the current
state. Much of the effectiveness of heuristic search is due to its search tree
being tightly focused on the states and actions that might immediately follow
the current state. You may spend more of your life playing chess than checkers,
but when you play checkers, it pays to think about checkers and about your
particular checkers position, your likely next moves, and successor positions.
No matter how you select actions, it is these states and actions that are of
highest priority for backups and where you most urgently want your approximate
value function to be accurate. Not only should your computation be
preferentially devoted to imminent events, but so should your limited memory
resources. In chess, for example, there are far too many possible positions to
store distinct value estimates for each of them, but chess programs based on
heuristic search can easily store distinct estimates for the millions of
positions they encounter looking ahead from a single position. This great
focusing of memory and computational resources on the current decision is
presumably the reason why heuristic search can be so effective.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The distribution of backups
can be altered in similar ways to focus on the current state and its likely
successors. As a limiting case we might use exactly the methods of heuristic
search to construct a search tree, and then perform the individual, one-step
backups from bottom up, as suggested by Figure 8.12. If the backups are ordered
in this way and a tabular representation is used, then exactly the same backup
would be achieved as in depth-first heuristic search. Any state-space search
can be viewed in this way as the piecing together of a large number of
individual one-step backups. Thus, the performance improvement observed with
deeper searches is not due to the use of multistep backups as such. Instead, it
is due to the focus and concentration of backups on states and actions
immediately downstream from the current state. By devoting a large amount of
computation specifically relevant to the candidate actions, decision-time
planning can produce better decisions than can be produced by relying on
unfocused backups.&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:167.3pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=223 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=223 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:167.3pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_31&#34; o:spid=&#34;_x0000_i1092&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image80&#34;
   style=&#39;width:315.75pt;height:168pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image081.jpg&#34;
    o:title=&#34;image80&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=afffff8 style=&#39;line-height:12.0pt;mso-line-height-rule:exactly;
  background:transparent;mso-element:frame;mso-element-frame-height:167.3pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span lang=EN-US&gt;Figure &lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
  ZH-TW&#39;&gt;8.12: &lt;/span&gt;&lt;span lang=EN-US&gt;The deep backups of heuristic search can
  be implemented as a sequence of one-step backups (shown here outlined). The
  ordering shown is for a selective depth-first search.&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:20.7pt;margin-right:0cm;margin-bottom:15.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l21 level1 lfo30;tab-stops:44.65pt;background:transparent&#39;&gt;&lt;a
name=bookmark138&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;8.10&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Rollout Algorithms&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Rollout algorithms are decision-time
planning algorithms based on Monte Carlo con&amp;shy;trol applied to simulated
trajectories that all begin at the current environment state. They estimate
action values for a given policy by averaging the returns of many simulated
trajectories that start with each possible action and then follow the given
policy. When the action-value estimates are considered to be accurate enough,
the action (or one of the actions) having the highest estimated value is
executed, after which the process is carried out anew from the resulting next
state. As explained by Tesauro and Galperin (1997), who experimented with
rollout algorithms for playing backgammon, the term \A1\B0rollout\A1\B1 comes from
estimating the value of a backgammon position by playing out, i.e., \A1\B0rolling
out,\A1\B1 the position many times to the game\A1\AFs end with randomly generated
sequences of dice rolls, where the moves of both players are made by some fixed
policy.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Unlike the Monte Carlo control
algorithms described in Chapter 5, the goal of a rollout algorithm is not to
estimate a complete optimal action-value function,&lt;/span&gt;&lt;span
class=MingLiUff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\81\96&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A3\AC&lt;/span&gt;&lt;span lang=EN-US&gt;or a complete
action-value function,&lt;/span&gt;&lt;span class=MingLiUff0&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span class=1pt4&gt;&lt;span lang=EN-US&gt;,for&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; a given policy n. Instead, they produce Monte Carlo estimates of
action values only for each current state and for a given policy usually called
the &lt;span class=afb&gt;rollout policy&lt;/span&gt;. As decision-time planning
algorithms, rollout algorithms make immediate use of these action-value
estimates, then discard them. This makes rollout algorithms relatively simple
to implement because there is no need to sample outcomes for every state-action
pair, and there is no need to approximate a function over either the state
space or the state-action space.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;What then do rollout
algorithms accomplish? The policy improvement theorem described in Section 4.2
tells us that given any two policies n and that are identical except that n&lt;sup&gt;;&lt;/sup&gt;(s)
= a = n(s) for some state s, if q^(s, a) &amp;gt; v^(s), then policy &lt;span
class=afb&gt;n&lt;sup&gt;!&lt;/sup&gt;&lt;/span&gt; is as good as, or better, than n. Moreover, if
the inequality is strict, then &lt;span class=afb&gt;n&lt;sup&gt;!&lt;/sup&gt;&lt;/span&gt; is in fact
better than &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. This applies to rollout algorithms where &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is the
current state and &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is the rollout policy. Averaging the
returns of the simulated trajectories produces estimates of (&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s, a&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&#39;) for each action &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&#39; &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;G A&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;). Then the policy that selects an action in &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;that maximizes these estimates and thereafter follows &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;is a good candidate for a policy that improves over &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. The result is like one step of the policy-iteration algorithm of
dynamic programming discussed in Section 4.3 (though it is more like one step
of &lt;span class=afb&gt;asynchronous&lt;/span&gt; value iteration described in Section 4.5
because it changes the action for just the current state).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In other words, the aim of a
rollout algorithm is to improve upon the default policy; not to find an optimal
policy. Experience has shown that rollout algorithms can be surprisingly
effective. For example, Tesauro and Galperin (1997) were surprised by the
dramatic improvements in backgammon playing ability produced by the rollout
method. In some applications, a rollout algorithm can produce good performance
even if the rollout policy is completely random. But clearly, the performance
of the improved policy depends on the performance of the rollout policy and the
accuracy of the Monte Carlo value estimates: the better the rollout policy and
the more accurate the value estimates, the better the policy produced by a rollout
algorithm is likely be.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;This involves important
tradeoffs because better rollout policies typically mean that more time is
needed to simulate enough trajectories to obtain good value esti&amp;shy;mates. As
decision-time planning methods, rollout algorithms usually have to meet strict
time constraints. The computation time needed by a rollout algorithm depends on
the number of actions that have to be evaluated for each decision, the number
of time steps in the simulated trajectories needed to obtain useful sample
returns, the time it takes the rollout policy to make decisions, and the number
of simulated trajectories needed to obtain good Monte Carlo action-value
estimates.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Balancing these factors is
important in any application of rollout methods, though there are several ways
to ease the challenge. Because the Monte Carlo trials are independent of one
another, it is possible to run many trials in parallel on separate processors.
Another tact is to truncate the simulated trajectories short of complete
episodes, correcting the truncated returns by means of a stored evaluation
function (which brings into play all that we have said about truncated returns
and backups in the preceding chapters). It is also possible, as Tesauro and
Galperin (1997) suggest, to monitor the Monte Carlo simulations and prune away
candidate actions that are unlikely to turn out to be the best, or whose values
are close enough to that of the cur&amp;shy;rent best that choosing them instead would
make no real difference (though Tesauro and Galperin point out that this would
complicate a parallel implementation).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;We do not ordinarily think of rollout algorithms as &lt;span class=afb&gt;learning&lt;/span&gt;
algorithms because they do not maintain long-term memories of values or
policies. However, these algorithms take advantage of some of the features of
reinforcement learning that we have emphasized in this book. As instances of
Monte Carlo control, they estimate action values by averaging the returns of a
collection of sample trajectories, in this case trajectories of simulated
interactions with a sample model of the environment. In this way they are like
reinforcement learning algorithms in avoiding the exhaustive sweeps of dynamic
programming by trajectory sampling, and in avoiding the need for distribution
models by relying on sample, instead of full, backups. Finally, rollout
algorithms take advantage of the policy improvement property by acting greedily
with respect to the estimated action values.&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.05pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l21 level1 lfo30;tab-stops:45.9pt;background:transparent&#39;&gt;&lt;a
name=bookmark139&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;8.11&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Monte Carlo Tree Search&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afb&gt;&lt;span lang=EN-US&gt;Monte Carlo Tree Search&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; (MCTS) is a recent and strikingly successful example of
decision-time planning. At is base, MCTS is a rollout algorithm as described
above, but enhanced by the addition of a means for accumulating value estimates
obtained from the Monte Carlo simulations in order to successively direct
simulations toward more highly-rewarding trajectories. MCTS is largely
responsible for the improvement in computer Go from a weak amateur level in
2005 to a grandmaster level &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;(6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; dan or more) in 2015.
Many variations of the basic algorithm have been developed, including a variant
that we discuss in Section 16.7 that was critical for the stunning 2016
victories of the program AlphaGo over an 18-time world champion Go player. MCTS
has proved to be effective in a wide variety of competitive settings, including
general game playing (e.g., see Finnsson &lt;/span&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;amp; &lt;/span&gt;&lt;span lang=EN-US&gt;Bjornsson, 2008;
Genesereth &lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;amp; &lt;/span&gt;&lt;span
lang=EN-US&gt;Thielscher, 2014), but it is not limited to games; it can be
effective for single-agent sequential decision problems if there is an
environment model simple enough for fast multistep simulation.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;MCTS is executed after encountering each new
state to select the agent\A1\AFs action for that state; it is executed again to
select the action for the next state, and so on. As in a rollout algorithm,
each execution is an iterative process that simulates many trajectories
starting from the current state and running to a terminal state (or until
discounting makes any further reward negligible as a contribution to the
return). The core idea of MCTS is to successively focus multiple simulations
start&amp;shy;ing at the current state by extending the initial portions of
trajectories that have received high evaluations from earlier simulations. MCTS
does not have to retain approximate value functions or policies from one action
selection to the next, though in many implementations it retains selected
action values likely to be useful for its next execution.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;For the most part, the actions in the simulated
trajectories are generated using a simple policy, usually called a rollout
policy as it is for simpler rollout algorithms. When both the rollout policy
and the model do not require a lot of computation, many simulated trajectories
can be generated in a short period of time. As in any tabular Monte Carlo
method, the value of a state-action pair is estimated as the average of the
(simulated) returns from that pair. Monte Carlo value estimates are maintained
only for the subset of state-action pairs that are most likely to be reached in
a few steps, which form a tree rooted at the current state, as illustrated in
Figure 8.13. MCTS incrementally extends the tree by adding nodes representing
states that look promising based on the results of the simulated trajectories.
Any simulated trajectory will pass through the tree and then exit it at some
leaf node. Outside the tree and at the leaf nodes the rollout policy is used
for action selections, &lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection205&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;but at the states inside the tree something
better is possible. For these states we have value estimates for of at least
some of the actions, so we can pick among them using an informed policy, called
the &lt;span class=afb&gt;tree policy&lt;/span&gt;, that balances exploration and
exploitation. For example, the tree policy could select actions using an
e-greedy or UCB selection rule (Chapter 2).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:6.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:13.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In more detail, each iteration
of a basic version of MCTS consists of the following four steps as illustrated
in Figure 8.13:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.0pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l1 level1 lfo34;
tab-stops:26.9pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;1.&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;Selection.
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Starting at the root node, a &lt;span class=afb&gt;tree
policy&lt;/span&gt; based on the action values attached to the edges of the tree
traverses the tree to select a leaf node.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.0pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l1 level1 lfo34;
tab-stops:26.9pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;2.&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;Expansion.
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;On some iterations (depending on details of the
application), the tree is expanded from the selected leaf node by adding one or
more child nodes reached from the selected node via unexplored actions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.0pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l1 level1 lfo34;
tab-stops:26.9pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;3.&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;Simulation.
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;From the selected node, or from one of its
newly-added child nodes (if any), simulation of a complete episode is run with
actions selected by the rollout policy. The result is a Monte Carlo trial with
actions selected first by the tree policy and beyond the tree by the rollout
policy.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.0pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l1 level1 lfo34;
tab-stops:26.9pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;4.&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;Backup.
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;The return generated by the simulated episode is
backed up to update, or to initialize, the action values attached to the edges
of the tree traversed by the tree policy in this iteration of MCTS. No values
are saved for the states and actions visited by the rollout policy beyond the
tree. Figure 8.13 illustrates this by showing a backup from the terminal state
of the simulated trajectory directly to the state-action node in the tree where
the rollout policy began (though in general, the entire return over the
simulated trajectory is backed up to this state-action node).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;MCTS continues executing these four steps,
starting each time at the tree\A1\AFs root node, until no more time is left, or some
other computational resource is exhausted. Then, finally, an action from the
root node (which still represents the current state of the environment) is
selected according to some mechanism that depends on the accumulated statistics
in the tree; for example, it may be an action having the largest action value
of all the actions available from the root state, or perhaps the action with
the largest visit count to avoid selecting outliers. This is the action MCTS
actually selects. After the environment transitions to a new state, MCTS is run
again, sometimes starting with a tree of a single root node representing the
new state, but often starting with a tree containing any descendants of this
node left over from the tree constructed by the previous execution of MCTS; all
the remaining nodes are discarded, along with the action values associated with
them.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:13.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;MCTS was first proposed to select moves in
programs playing two-person compet&amp;shy;itive games, such as Go. For game playing,
each simulated episode is one complete play of the game in which both players
select actions by the tree and rollout poli&amp;shy;cies. Section 16.7 describes an
extension of MCTS used in the AlphaGo program that combines the Monte Carlo
evaluations of MCTS with action values learned by a deep ANN via self-play
reinforcement learning.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection206&gt;

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&lt;/div&gt;

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 &lt;/v:shape&gt;&lt;/o:wrapblock&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:26.25pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection208&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:31.65pt;
margin-left:1.0pt;line-height:11.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=213&gt;&lt;span lang=EN-US&gt;Figure 8.13: Monte Carlo Tree
Search. When the environment changes to a new state, MCTS executes as many
iterations as possible before an action needs to be selected, incre&amp;shy;mentally
building a tree whose root node represents the current state. Each iteration
consists of the four operations &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Selection&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;Expansion &lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;(though possibly skipped on some iterations), &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Simulation&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;, and &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Backup&lt;/span&gt;&lt;/span&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;, as explained in the text and illustrated by the bold arrows in the
trees.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;Relating MCTS to the reinforcement learning principles we describe
in this book provides some insight into how it achieves such impressive
results. At its base, MCTS is a decision-time planning algorithm based on Monte
Carlo control applied to simulations that start from the root state; that is,
it is a kind of rollout algorithm as described in the previous section. It
therefore benefits from online, incremental, sample-based value estimation and
policy improvement. Beyond this, it saves action- value estimates attached to
the tree edges and updates them using reinforcement learning\A1\AFs sample backups.
This has the effect of focusing the Monte Carlo trials on trajectories whose
initial segments are common to high-return trajectories previously simulated.
Further, by incrementally expanding the tree, MCTS effectively grows a lookup
table to store a partial action-value function, with memory allocated to the
estimated values of state-action pairs visited in the initial segments of
high-yielding sample trajectories. MCTS thus avoids the problem of globally
approximating an action-value function while it retrains the benefit of using
past experience to guide exploration.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=213&gt;&lt;span
lang=EN-US&gt;The striking success of decision-time planning by MCTS has deeply
influenced artificial intelligence, and many researchers are studying
modifications and extensions of the basic procedure for use in both games and
single-agent applications.&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.8pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l21 level1 lfo30;tab-stops:45.1pt;background:transparent&#39;&gt;&lt;a
name=bookmark140&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;8.12&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Summary&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Planning requires a model of the
environment. A &lt;span class=afb&gt;distribution model&lt;/span&gt; consists of the
probabilities of next states and rewards for possible actions; a sample model
produces single transitions and rewards generated according to these
probabilities. Dynamic programming requires a distribution model because it
uses &lt;span class=afb&gt;full backups&lt;/span&gt;, which involve computing expectations
over all the possible next states and rewards. A &lt;span class=afb&gt;sample model&lt;/span&gt;,
on the other hand, is what is needed to simulate interacting with the
environment during which &lt;span class=afb&gt;sample backups&lt;/span&gt;, like those used
by many reinforcement learning algorithms, can be used. Sample models are
generally much easier to obtain than distribution models.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;We have presented a
perspective emphasizing the surprisingly close relationships between planning
optimal behavior and learning optimal behavior. Both involve estimating the
same value functions, and in both cases it is natural to update the estimates
incrementally, in a long series of small backup operations. This makes it
straightforward to integrate learning and planning processes simply by allowing
both to update the same estimated value function. In addition, any of the
learning meth&amp;shy;ods can be converted into planning methods simply by applying
them to simulated (model-generated) experience rather than to real experience.
In this case learning and planning become even more similar; they are possibly
identical algorithms op&amp;shy;erating on two different sources of experience.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;It is straightforward to
integrate incremental planning methods with acting and model-learning.
Planning, acting, and model-learning interact in a circular fashion (Figure
8.1), each producing what the other needs to improve; no other interaction
among them is either required or prohibited. The most natural approach is for
all processes to proceed asynchronously and in parallel. If the processes must
share computational resources, then the division can be handled almost
arbitrarily\A1\AAby whatever organization is most convenient and efficient for the
task at hand.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In this chapter we have
touched upon a number of dimensions of variation among state-space planning
methods. One dimension is the variation in the size of backups. The smaller the
backups, the more incremental the planning methods can be. Among the smallest
backups are one-step sample backups, as in Dyna. Another important dimension is
the distribution of backups, that is, of the focus of search. Prioritized
sweeping focuses backward on the predecessors of states whose values have
recently changed. On-policy trajectory sampling focuses on states or
state-action pairs that the agent is likely to encounter when controlling its
environment. This can allow computation to skip over parts of the state space
that are irrelevant to the predic&amp;shy;tion or control problem. Real-time dynamic
programming, an on-policy trajectory sampling version of value iteration,
illustrates some of the advantages this strategy has over conventional
sweep-based policy iteration.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Planning can also focus
forward from pertinent states, such as states actually encountered during an
agent-environment interaction. The most important form of this is when planning
is done at decision time, that is, as part of the action-selection process.
Classical heuristic search as studied in artificial intelligence is an example
of&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.4pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;this. Other examples are rollout algorithms and Monte Carlo Tree
Search that benefit&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:24.8pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;from online, incremental, sample-based value estimation and policy
improvement.&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.55pt;
margin-left:36.0pt;line-height:13.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;a name=bookmark141&gt;&lt;span lang=EN-US&gt;Bibliographical and
Historical Remarks&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l15 level1 lfo35;
tab-stops:35.95pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;b&gt;&lt;span
lang=EN-US style=&#39;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;8.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/b&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;The overall view of
planning and learning presented here has developed grad&amp;shy;ually over a number of
years, in part by the authors (Sutton, 1990, 1991a, 1991b; Barto, Bradtke, and
Singh, 1991, 1995; Sutton and Pinette, 1985; Sut&amp;shy;ton and Barto, 1981b); it has
been strongly influenced by Agre and Chapman (1990; Agre 1988), Bertsekas and
Tsitsiklis (1989), Singh (1993), and others. The authors were also strongly
influenced by psychological studies of latent learning (Tolman, 1932) and by
psychological views of the nature of thought (e.g., Galanter and Gerstenhaber,
1956; Craik, 1943; Campbell, 1960; Den&amp;shy;nett, 1978). In the Part III of the
book, Section 14.6 relates model-based and model-free methods to psychological
theories of learning and behavior, and Section 15.11 discusses ideas about how
the brain might implement these types of methods.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l15 level1 lfo35;
tab-stops:35.95pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;b&gt;&lt;span
lang=EN-US style=&#39;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;8.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/b&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;The terms &lt;span class=afb&gt;direct&lt;/span&gt;
and &lt;span class=afb&gt;indirect&lt;/span&gt;, which we use to describe different kinds
of re&amp;shy;inforcement learning, are from the adaptive control literature (e.g.,
Goodwin and Sin, 1984), where they are used to make the same kind of
distinction. The term &lt;span class=afb&gt;system identification&lt;/span&gt; is used in
adaptive control for what we call &lt;span class=afb&gt;model-learning&lt;/span&gt; (e.g.,
Goodwin and Sin, 1984; Ljung and Soderstrom, 1983; Young, 1984). The Dyna
architecture is due to Sutton (1990), and the results in this and the next
section are based on results reported there. Barto and Singh (1991) consider
some of the issues in comparing direct and indirect reinforcement learning
methods.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l15 level1 lfo35;
tab-stops:35.95pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;b&gt;&lt;span
lang=EN-US style=&#39;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;8.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/b&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;There have been several
works with model-based reinforcement learning that take the idea of exploration
bonuses and optimistic initialization to its logical extreme, in which all
incompletely explored choices are assumed maximally rewarding and optimal paths
are computed to test them. The E&lt;/span&gt;&lt;span class=9pt5&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;3&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; algorithm of
Kearns and Singh (2002) and the R-max algorithm of Brafman and Tennen- holtz
(2003) are guaranteed to find a near-optimal solution in time polynomial in the
number of states and actions. This is usually too slow for practical algorithms
but is probably the best that can be done in the worst case.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.15pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l15 level1 lfo35;
tab-stops:35.95pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;b&gt;&lt;span
lang=EN-US style=&#39;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;8.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/b&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Prioritized sweeping was
developed simultaneously and independently by Moore and Atkeson (1993) and Peng
and Williams (1993). The results in Figure 8.7 are due to Peng and Williams
(1993). The results in Figure &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;8.8 &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;are due to Moore and
Atkeson.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:36.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:-36.0pt;line-height:9.5pt;mso-line-height-rule:
exactly;mso-list:l15 level1 lfo35;tab-stops:35.95pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;b&gt;&lt;span
lang=EN-US style=&#39;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;8.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/b&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;This section was strongly
influenced by the experiments of Singh (1993).&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection209&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 401.1pt;
background:transparent&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;8.6\A1\AA7 &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Trajectory sampling has implicitly been a part of reinforcement
learning from the outset, but it was most explicitly emphasized by Barto,
Bradtke, and Singh (1995) in their introduction of RTDP. They recognized that
Korf\A1\AFs (1990) &lt;span class=afb&gt;learning real-time A*&lt;/span&gt; (LRTA*) algorithm is
an asynchronous DP algorithm that applies to stochastic problems as well as the
deterministic problems on which Korf focused. Beyond LRTA*, RTDP includes the
option of backing up the values of many states in the time intervals between the
execution of actions. Barto et al. (1995) proved the convergence result de&amp;shy;scribed
here by combining Korf\A1\AFs (1990) convergence proof for LRTA* with the result of
Bertsekas (1982) (also Bertsekas and Tsitsiklis, 1989) ensuring convergence of
asynchronous DP for stochastic shortest path problems in the undiscounted case.
Combining model-learning with RTDP is called &lt;span class=afb&gt;Adaptive &lt;/span&gt;RTDP,
also presented by Barto et al. (1995)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;and
discussed by Barto (2011).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:36.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l42 level1 lfo36;tab-stops:34.55pt right 401.1pt;background:
transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;8.9&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/b&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;For further reading on
heuristic search, the&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;reader
is encouraged to consult&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;texts and surveys such as those by Russell and Norvig (2009) and
Korf (1988). Peng and Williams (1993) explored a forward focusing of backups
much as is suggested in this section.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:36.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l42 level1 lfo36;tab-stops:34.55pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;b&gt;&lt;span
lang=EN-US style=&#39;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;8.10&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/b&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Abramson\A1\AFs (1990)
expected-outcome model is a rollout algorithm applied&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:36.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 401.1pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;to two-person
games in which the play of&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;both
simulated players is ran&amp;shy;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;dom. He argued that even with random play, it is a \A1\B0powerful
heuristic\A1\B1 that is \A1\B0precise, accurate, easily estimable, efficiently
calculable, and domain- independent.\A1\B1 Tesauro and Galperin (1997) demonstrated
the effectiveness of rollout algorithms for improving the play of backgammon
programs, adopting the term \A1\B0rollout\A1\B1 from its use in evaluating backgammon
positions by play&amp;shy;ing out positions with different randomly generating
sequences of dice rolls. Bertsekas, Tsitsiklis, and Wu (1997) examine rollout
algorithms applied to combinatorial optimization problems, and Bertsekas (2013)
surveys their use in discrete deterministic optimization problems, remarking
that they are \A1\B0of&amp;shy;ten surprisingly effective.\A1\B1&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l42 level1 lfo36;tab-stops:34.55pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;b&gt;&lt;span
lang=EN-US style=&#39;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;8.11&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/b&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;The central ideas of MCTS
were introduced by Coulom (2006) and by Koc- sis and Szepesvari (2006). They
built upon previous research with Monte Carlo planning algorithms as reviewed
by these authors. Browne, Powley, Whitehouse, Lucas, Cowling, Rohlfshagen,
Tavener, Perez, Samothrakis, and Colton (2012) survey MCTS methods and their
applications. This section was written with the essential help of David Silver.&lt;/span&gt;&lt;/p&gt;

&lt;p class=6e style=&#39;margin-bottom:62.35pt;line-height:19.0pt;mso-line-height-rule:
exactly;mso-pagination:lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark142&gt;&lt;span lang=EN-US&gt;Part II: Approximate Solution Methods&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:33.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In the second part of the book
we extend the tabular methods presented in Part I to apply to problems with
arbitrarily large state spaces. In many of the tasks to which we would like to
apply reinforcement learning the state space is combinatorial and enormous; the
number of possible camera images, for example, is much larger than the number
of atoms in the universe. In such cases we cannot expect to find an optimal
policy or the optimal value function even in the limit of infinite time and
data; our goal instead is to find a good approximate solution using limited
computational resources. In this part of the book we explore such approximate
solution methods.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:33.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The problem with large state
spaces is not just the memory needed for large tables, but the time and data
needed to fill them accurately. In many of our target tasks, almost every state
encountered will never have been seen before. To make sensible decisions in
such states it is necessary to generalize from previous encounters with
different states that are in some sense similar to the current one. In other
words, the key issue is that of &lt;span class=afb&gt;generalization.&lt;/span&gt; How can
experience with a limited subset of the state space be usefully generalized to
produce a good approximation over a much larger subset?&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:33.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Fortunately, generalization
from examples has already been extensively studied, and we do not need to
invent totally new methods for use in reinforcement learning. To some extent we
need only combine reinforcement learning methods with existing generalization
methods. The kind of generalization we require is often called &lt;span class=afb&gt;func&amp;shy;tion
approximation&lt;/span&gt; because it takes examples from a desired function (e.g., a
value function) and attempts to generalize from them to construct an
approximation of the entire function. Function approximation is an instance of &lt;span
class=afb&gt;supervised learning,&lt;/span&gt; the primary topic studied in machine
learning, artificial neural networks, pattern recog&amp;shy;nition, and statistical
curve fitting. In theory, any of the methods studied in these fields can be
used in the role of function approximator within reinforcement learning
algorithms, although in practice some fit more easily into this role than
others.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:33.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Nevertheless, reinforcement
learning with function approximation involves a num&amp;shy;ber of new issues that do
not normally arise in conventional supervised learning, such as
nonstationarity, bootstrapping, and delayed targets. We introduce these and
other issues successively over the five chapters of this part. Initially we
restrict attention to on-policy training, treating in Chapter 9 the prediction
case, in which the policy is given and only its value function is approximated,
and then in Chapter 10 the control case, in which an approximation to the
optimal policy is found. Chapter 11 covers off-policy methods. In each of these
chapters we will have to return to first principles and re-examine the
objectives of the learning to take into account function&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;approximation. Chapter &lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;12 &lt;/span&gt;&lt;span lang=EN-US&gt;introduces
and analyzes the algorithmic mechanism of &lt;span class=afb&gt;eligibility traces,&lt;/span&gt;
which dramatically improves the computational properties of multi&amp;shy;step
reinforcement learning methods in many cases. The final chapter of this part
explores a different approach to control, &lt;span class=afb&gt;policy-gradient
methods&lt;/span&gt;, which approximate the optimal policy directly and need never
form an approximate value function (al&amp;shy;though they may be much more efficient
if they do approximate a value function as well).&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection210&gt;

&lt;p class=651 style=&#39;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=ZH-TW&gt;210&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=ZH-TW style=&#39;font-size:9.5pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:ZH-TW;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection211&gt;

&lt;p class=8a style=&#39;margin-bottom:22.9pt;line-height:19.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Chapter 9&lt;/span&gt;&lt;/p&gt;

&lt;p class=522 style=&#39;margin-top:0cm;margin-right:83.0pt;margin-bottom:39.85pt;
margin-left:0cm;line-height:29.5pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark143&gt;&lt;span lang=EN-US&gt;On-policy Prediction with Approximation&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In this chapter, we begin our study of function approximation in
reinforcement learn&amp;shy;ing by considering its use in estimating the state-value
function from on-policy data, that is, in approximating from experience
generated using a known policy n. The novelty in this chapter is that the
approximate value function is represented not as a table but as a parameterized
functional form with weight vector &lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span
lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;G R&lt;/span&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;d&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. We
will write v(s,&lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) ^ V&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(s) for the approximated value of state
&lt;span class=afb&gt;s&lt;/span&gt; given weight vector &lt;/span&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. For
example, V might be a linear function in features of the state, with &lt;/span&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;the
vector of feature weights. More generally, V might be the function computed by
a multi-layer artificial neural network, with &lt;/span&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;the
vector of connection weights in all the layers. By adjusting the weights, any
of a wide range of different functions can be implemented by the network. Or V
might be the function computed by a decision tree, where &lt;/span&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is all
the numbers defining the split points and leaf values of the tree. Typically,
the number of weights (the dimensionality of &lt;/span&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) is
much less than the number of states (d&lt;/span&gt;&lt;span class=MingLiUff0&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;\A1\B6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;|S|), and changing one
weight changes the estimated value of many states. Consequently, when a single
state is updated, the change generalizes from that state to affect the values
of many other states. Such &lt;span class=afb&gt;generalization&lt;/span&gt; makes the
learning potentially more powerful but also potentially more difficult to
manage and understand.&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.8pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l88 level1 lfo37;tab-stops:36.25pt;background:transparent&#39;&gt;&lt;a
name=bookmark144&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;9.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Value-function Approximation&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;All of the prediction methods covered
in this book have been described as backups, that is, as updates to an
estimated value function that shift its value at particular states toward a
\A1\B0backed-up value\A1\B1 for that state. Let us refer to an individual backup by the
notation &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;^ &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;g&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, where &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is the state backed up and &lt;span
class=afb&gt;g&lt;/span&gt; is the backed-up value, or target, that &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;\A1\AFs estimated value is shifted toward. For example, the Monte Carlo
backup for value prediction is &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t ^ &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;G&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t, the TD(0) backup is &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t ^ &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+i+&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;T&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;^(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+i&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;wt), and the &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-step TD backup is &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t ^ &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;G&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t:t+n. In the DP (dynamic programming) policy-evaluation backup, &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;^ &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;En&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;[&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;Rt+i
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;Y&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&amp;amp;(&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;St+i,wt&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) | &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;St
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;], an arbitrary state &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;is backed up, whereas in the other cases the state encountered in
actual experience, &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, is backed up.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;It is natural to interpret each backup as
specifying an example of the desired input-output behavior of the value
function. In a sense, the backup &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;^ &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;g &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;means that the estimated value for state &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;should be
more like the number &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;g&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. Up to now, the
actual update implementing the backup has been trivial: the table entry for &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;\A1\AFs estimated value has simply been shifted a fraction of the way
toward &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;g&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, and the estimated values of all other states were left unchanged.
Now we permit arbitrarily complex and sophisticated methods to implement the
backup, and updating at &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;generalizes so that
the estimated values of many other states are changed as well. Machine learning
methods that learn to mimic input-output examples in this way are called &lt;span
class=afb&gt;supervised learning&lt;/span&gt; methods, and when the outputs are numbers,
like &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;g&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, the process is often called &lt;span class=afb&gt;function
approximation.&lt;/span&gt; Function approximation methods expect to receive examples
of the desired input-output behavior of the function they are trying to
approximate. We use these methods for value prediction simply by passing to
them the &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;^ &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;g
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;of each backup as a training example. We then
interpret the approximate function they produce as an estimated value function.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:21.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Viewing each backup as a conventional training example in this way
enables us to use any of a wide range of existing function approximation
methods for value pre&amp;shy;diction. In principle, we can use any method for
supervised learning from examples, including artificial neural networks,
decision trees, and various kinds of multivariate regression. However, not all
function approximation methods are equally well suited for use in reinforcement
learning. The most sophisticated neural network and statis&amp;shy;tical methods all
assume a static training set over which multiple passes are made. In
reinforcement learning, however, it is important that learning be able to occur
on&amp;shy;line, while interacting with the environment or with a model of the
environment. To do this requires methods that are able to learn efficiently
from incrementally acquired data. In addition, reinforcement learning generally
requires function approximation methods able to handle nonstationary target
functions (target functions that change over time). For example, in control
methods based on GPI (generalized policy itera&amp;shy;tion) we often seek to learn &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;q^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;while &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;changes. Even if the policy remains
the same, the target values of training examples are nonstationary if they are
generated by bootstrapping methods (DP and TD learning). Methods that cannot
easily handle such nonstationarity are less suitable for reinforcement
learning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l88 level1 lfo37;tab-stops:37.5pt;background:transparent&#39;&gt;&lt;a
name=bookmark145&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;9.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;The Prediction Objective (MSVE)&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.25pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Up to now we have not specified an explicit objective for
prediction. In the tabular case a continuous measure of prediction quality was
not necessary because the learned value function could come to equal the true
value function exactly. Moreover, the learned values at each state were
decoupled\A1\AAan update at one state affected no other. But with genuine
approximation, an update at one state affects many others, and it is not
possible to get all states exactly correct. By assumption we have far &lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection212&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.25pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;more states than weights, so making one state\A1\AFs estimate more
accurate invariably means making others\A1\AF less accurate. We are obligated then
to say which states we care most about. We must specify a weighting or
distribution &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) &amp;gt; 0 representing how much we care about the error in each state
&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. By the error in a state &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;we mean the square of
the difference between the approximate value &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s,w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) and the true value &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;vn&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;). Weighting this over the state space by the distribution &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;&amp;quot;&lt;/span&gt;&lt;/span&gt;\A3\AC&lt;span
lang=EN-US&gt;we obtain a natural objective function, the &lt;span class=afb&gt;Mean
Squared Value Error,&lt;/span&gt; or MSVE:&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:92.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:8.15pt;mso-line-height-rule:exactly;tab-stops:right 215.85pt;
background:transparent&#39;&gt;&lt;span class=20pt0&gt;&lt;span lang=EN-US&gt;^~^&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU4&gt;&lt;span style=&#39;font-size:9.5pt;mso-ansi-language:ZH-TW&#39;&gt;\A1\B8&lt;/span&gt;&lt;/span&gt;&lt;span
class=20pt0&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=29pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:19.8pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:8.15pt;mso-line-height-rule:exactly;tab-stops:91.85pt 214.25pt right 398.55pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;MSVE(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^^&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;vn&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) \A1\AA {&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s,w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;.&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(9.1)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The square root of this measure, the root MSVE or
RMSVE, gives a rough measure of how much the approximate values differ from the
true values and is often used in plots. Typically one chooses &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) to be the fraction of time spent in &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;under the
target policy &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. This is called the &lt;span class=afb&gt;on-policy distribution&lt;/span&gt;;
we focus entirely on this case in this chapter. In continuing tasks, the
on-policy distribution is the stationary distribution under &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.25pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
15.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span
class=af7&gt;&lt;span lang=EN-US&gt;The on-policy distribution in episodic tasks&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:5.95pt;
margin-left:15.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In an episodic task, the on-policy distribution is a little
different in that it is not really a distribution and depends on how the
initial states of episodes are chosen. Let h(s) denote the probability that an
episode begins in each state s, and let the \A1\B0distribution\A1\B1 ^(s) denote the
number of time steps spent, on average, in state s in a single episode. Time is
spent in a state s if episodes start in it, or if transitions are made into it
from a state &lt;span class=afb&gt;s&lt;/span&gt; in which time is spent:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:43.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:21.0pt;mso-line-height-rule:exactly;
tab-stops:right 385.25pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;&amp;quot;(s) =
h(s) + ^ &amp;quot;(s) &lt;/span&gt;&lt;span class=CenturySchoolbookf1&gt;&lt;span lang=EN-US
style=&#39;font-size:21.0pt&#39;&gt;E &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;n(a|s)p(s|s, a), Vs G
S.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(9.2)&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:11.2pt;
margin-left:117.0pt;line-height:8.0pt;mso-line-height-rule:exactly;tab-stops:
center 158.3pt;background:transparent&#39;&gt;&lt;span class=219&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
class=213&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;a&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.25pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
15.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;This system of equations can be solved for the expected number of
visits &amp;quot;(s).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The two cases, continuing and episodic, behave
similarly, but with approximation they must be treated separately in formal
analyses, as we will see repeatedly in this part of the book. This completes
the specification of the learning objective.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;It is not completely clear that the MSVE is the
right performance objective for reinforcement learning&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;.&lt;a style=&#39;mso-footnote-id:ftn15&#39;
href=&#34;#_ftn15&#34; name=&#34;_ftnref15&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:
footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=9pt5&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[15]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; Remember that our ultimate purpose, the reason we are learning a
value function, is to use it in finding a better policy. The best value func&amp;shy;tion
for this purpose is not necessarily the best for minimizing MSVE. Nevertheless,
it is not yet clear what a more useful alternative goal for value prediction
might be. For now, we will focus on MSVE.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;An ideal goal in terms of MSVE would be to find a
&lt;span class=afb&gt;global optimum,&lt;/span&gt; a weight vector &lt;/span&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;* for
which MSVE(&lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;*) &amp;lt; MSVE(&lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) for all possible &lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. Reaching this goal is some&amp;shy;times
possible for simple function approximators such as linear ones, but is rarely
possible for complex function approximators such as artificial neural networks
and decision trees. Short of this, complex function approximators may seek to
converge instead to a &lt;span class=afb&gt;local optimum,&lt;/span&gt; a weight vector &lt;/span&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;* for
which MSVE(&lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;*) &amp;lt; MSVE(&lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) for all &lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;in some neighborhood of &lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;*. Although this guarantee is only
slightly reassur&amp;shy;ing, it is typically the best that can be said for nonlinear
function approximators, and often it is enough. Still, for many cases of
interest in reinforcement learning there is no guaranteed of convergence to an
optimum, or even to within a bounded distance of an optimum. Some methods may
in fact diverge, with their MSVE approaching infinity in the limit.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:18.35pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In the last two sections we
have outlined a framework for combining a wide range of reinforcement learning
methods for value prediction with a wide range of function approximation
methods, using the backups of the former to generate training ex&amp;shy;amples for the
latter. We have also described a MSVE performance measure which these methods
may aspire to minimize. The range of possible function approxima&amp;shy;tion methods
is far too large to cover all, and anyway too little is known about most of
them to make a reliable evaluation or recommendation. Of necessity, we consider
only a few possibilities. In the rest of this chapter we focus on function
approximation methods based on gradient principles, and on linear
gradient-descent methods in particular. We focus on these methods in part
because we consider them to be particularly promising and because they reveal
key theoretical issues, but also because they are simple and our space is
limited.&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l88 level1 lfo37;tab-stops:36.95pt;background:transparent&#39;&gt;&lt;a
name=bookmark146&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;9.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Stochastic-gradient and
Semi-gradient Methods&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;We now develop in detail one class of learning
methods for function approximation in value prediction, those based on
stochastic gradient descent (SGD). SGD methods are among the most widely used
of all function approximation methods and are particularly well suited to
online reinforcement learning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:3.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In gradient-descent methods,
the weight vector is a column vector with a fixed number of real valued
components, &lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;== (wi, W&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=1pt4&gt;&lt;span lang=EN-US&gt;,...,&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; w&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;,&lt;a style=&#39;mso-footnote-id:ftn16&#39; href=&#34;#_ftn16&#34;
name=&#34;_ftnref16&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=9pt5&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[16]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; and the approximate value function V(s,&lt;/span&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) is a
differentiable function of &lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;for all s G S. We will be updating &lt;/span&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;at each
of a series of discrete time steps, &lt;span class=afb&gt;t&lt;/span&gt; = 0,1, 2, &lt;span
class=1pt4&gt;3,...,&lt;/span&gt; so we will need a notation &lt;/span&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;for the
weight vector at each step. For now, let us assume that, on each step, we
observe a new example S&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;^ V&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(S&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) consisting of a (possibly randomly selected) state S&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;and its true value under the policy. These states might be
successive states from an interaction with the environment, but for now we do
not assume so. Even though we are given the exact, correct values, V&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(S&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) for each S&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, there is still a
difficult problem because our function approximator has limited resources and
thus&lt;br clear=all style=&#39;page-break-before:always&#39;&gt;
limited resolution. In particular, there is generally no w that gets all the
states, or even all the examples, exactly correct. In addition, we must
generalize to all the other states that have not appeared in examples.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;We assume that states appear in examples with the same distribution,
&amp;quot;, over which we are trying to minimize the MSVE as given by (9.1). A good
strategy in this case is to try to minimize error on the observed examples. &lt;span
class=afb&gt;Stochastic gradient- descent&lt;/span&gt; (SGD) methods do this by
adjusting the weight vector after each example by a small amount in the
direction that would most reduce the error on that example:&lt;/span&gt;&lt;/p&gt;

&lt;p class=77 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:93.0pt;margin-bottom:.0001pt;line-height:9.5pt;mso-line-height-rule:
exactly;tab-stops:202.9pt;background:transparent&#39;&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-begin&#39;&gt;&lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;TOC \o &amp;quot;1-5&amp;quot; \h \z &lt;span
style=&#39;mso-element:field-separator&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;span lang=EN-US&gt;1&lt;/span&gt;&lt;span
class=795pt&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; r&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;1&lt;sup&gt;2&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:11.75pt;
margin-left:28.0pt;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:
right 400.85pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;wt&lt;/span&gt;&lt;span
class=MingLiUff5&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt7&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; = wt - &lt;/span&gt;&lt;span class=9pt7&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=aff1&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; Vn(St) - v(St,wt)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(9.3)&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.0pt;
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    class=2ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:
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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;&lt;a href=&#34;#bookmark207&#34; title=&#34;Current Document&#34;&gt;&lt;span
class=12pt2&gt;&lt;span style=&#39;font-size:12.0pt&#39;&gt;Vn&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;(&lt;/span&gt;&lt;span
class=12pt2&gt;&lt;span style=&#39;font-size:12.0pt&#39;&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span
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class=12pt2&gt;&lt;span style=&#39;font-size:12.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;(&lt;/span&gt;&lt;span
class=12pt2&gt;&lt;span style=&#39;font-size:12.0pt&#39;&gt;St,&lt;/span&gt;&lt;/span&gt;&lt;span
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class=12pt2&gt;&lt;span style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;) V&lt;/span&gt;&lt;span
class=12pt2&gt;&lt;span style=&#39;font-size:12.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;(&lt;/span&gt;&lt;span
class=12pt2&gt;&lt;span style=&#39;font-size:12.0pt&#39;&gt;St,&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;w&lt;/span&gt;&lt;span
class=12pt2&gt;&lt;span style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;)&lt;/span&gt;&lt;span
class=12pt2&gt;&lt;span style=&#39;font-size:12.0pt&#39;&gt;,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;color:black;text-decoration:none;text-underline:none&#39;&gt;(9.4)&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-end&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where &lt;span class=afb&gt;a&lt;/span&gt; is a positive step-size parameter,
and Vf (w), for any scalar expression &lt;span class=afb&gt;f&lt;/span&gt; (w), denotes the
vector of partial derivatives with respect to the components of the weight
vector:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:178.4pt;background:transparent&#39;&gt;&lt;sub&gt;&lt;span lang=EN-US&gt;(w)&lt;/span&gt;&lt;/sub&gt;&lt;span
lang=EN-US&gt; &amp;#8226; &lt;span class=afb&gt;(&lt;/span&gt; &lt;sup&gt;d&lt;/sup&gt;f (w) &lt;sup&gt;d&lt;/sup&gt;f (w)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;d&lt;/sup&gt;f
&lt;span class=1pt4&gt;(w)\&lt;sup&gt;T&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.0pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l96 level1 lfo38;
tab-stops:right 400.85pt left 37.35pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;mso-bidi-font-weight:
bold&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=25pt&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;f(w)&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;^.&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(9&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt; )&lt;/span&gt;&lt;/sup&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;This derivative vector is the &lt;span class=afb&gt;gradient&lt;/span&gt; of f
with respect to w. SGD methods are \A1\B0gradient descent\A1\B1 methods because the
overall step in wt is proportional to the negative gradient of the example\A1\AFs
squared error (9.3). This is the direction in which the error falls most
rapidly. Gradient descent methods are called \A1\B0stochastic\A1\B1 when the update is
done, as here, on only a single example, which might have been selected
stochastically. Over many examples, making small steps, the overall effect is
to minimize an average performance measure such as the MSVE.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;It may not be immediately apparent why SGD takes only a small step
in the direction of the gradient. Could we not move all the way in this
direction and completely eliminate the error on the example? In many cases this
could be done, but usually it is not desirable. Remember that we do not seek or
expect to find a value function that has zero error for all states, but only an
approximation that balances the errors in different states. If we completely
corrected each example in one step, then we would not find such a balance. In
fact, the convergence results for SGD methods assume that &lt;span class=afb&gt;a&lt;/span&gt;
decreases over time. If it decreases in such a way as to satisfy the standard
stochastic approximation conditions (2.7), then the SGD method (9.4) is
guaranteed to converge to a local optimum.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;We turn now to the case in which the target output, here denoted Ut
G R, of the tth training example, St ^ Ut, is not the true value, Vn(St), but
some, possibly random, approximation to it. For example, Ut might be a
noise-corrupted version of Vn(St), or it might be one of the bootstrapping
targets using V mentioned in the previous section. In these cases we cannot
perform the exact update (9.4) because Vn(St) is unknown, but we can
approximate it by substituting Ut in place of Vn(St). This yields the following
general SGD method for state-value prediction:&lt;/span&gt;&lt;/p&gt;

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    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;wt&lt;/span&gt;&lt;/span&gt;&lt;span
    class=-1ptExact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:
    -1.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt; = wt + a&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;Ut &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;- &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;St,&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) V&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;St,&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(9.6)&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.4pt;
margin-left:1.0pt;text-indent:14.0pt;line-height:9.5pt;mso-line-height-rule:
exactly;background:black&#39;&gt;&lt;span class=512&gt;&lt;span lang=EN-US&gt;Gradient Monte Carlo
Algorithm for Estimating &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;v &lt;/span&gt;&lt;/span&gt;&lt;span
class=51MingLiU0&gt;&lt;span style=&#39;font-size:5.0pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;\B0\D1&lt;/span&gt;&lt;/span&gt;&lt;span class=512&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;v^&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Input: the policy n to be evaluated&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.75pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
14.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 240.35pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Input: a differentiable function v : S
x R&lt;sup&gt;d&lt;/sup&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;R&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:83.0pt;margin-bottom:0cm;
margin-left:15.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
value-function weights &lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;as appropriate (e.g., &lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span
lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) Repeat
forever:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:94.0pt;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Generate
an episode So, Ao, Ri, Si, &lt;span class=1pt4&gt;Ai,...,&lt;/span&gt; Rt, St using n For &lt;span
class=afb&gt;t&lt;/span&gt; = &lt;span class=1pt4&gt;0,1,...,&lt;/span&gt; T \A1\AA 1:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:42.0pt;
margin-left:44.0pt;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t &lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+ a [Gt \A1\AA v(St,&lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)] W(St,&lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;If U&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is an &lt;span
class=afb&gt;unbiased&lt;/span&gt; estimate, that is, if E[U&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;] = v&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(S&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;), for each t, then w&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is guaranteed to
converge to a local optimum under the usual stochastic approximation conditions
(2.7) for decreasing a.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;For example, suppose the states in the examples
are the states generated by in&amp;shy;teraction (or simulated interaction) with the
environment using policy n. Because the true value of a state is the expected
value of the return following it, the Monte Carlo target U&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;== G&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is by definition an unbiased estimate of v&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(S&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;). With this choice, the general SGD method (9.6) converges to a
locally optimal approximation to v&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(S&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;). Thus, the gradient-descent version of Monte Carlo state-value
prediction is guaranteed to find a locally optimal solution. Pseudocode for a
complete algorithm is shown in the box.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;One does not obtain the same guarantees if a
bootstrapping estimate of v&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(S&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) is used as the target U&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;in (9.6).
Bootstrapping targets such as n-step returns G&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUff0&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;or the DP target E&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;as&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;r &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;n(a|S&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)p(s&lt;sup&gt;;&lt;/sup&gt;, r|S&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, a)[r + &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;v(s&lt;sup&gt;;&lt;/sup&gt;,w&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)] all depend on the current value of the weight vector w&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, which implies that they will be biased and that they will not
produce a true gradient-descent method. One way to look at this is that the key
step from (9.3) to (9.4) relies on the target being independent of w&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. This step would not be valid if a bootstrapping estimate was used
in place of v&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(S&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;). Bootstrapping methods are not in fact instances of true gradient
descent (Barnard, 1993). They take into account the effect of changing the
weight vector w&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;on the estimate, but ignore its effect on the
target. They include only a part of the gradient and, accordingly, we call them
&lt;span class=afb&gt;semi-gradient methods.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Although semi-gradient (bootstrapping) methods do
not converge as robustly as gradient methods, they do converge reliably in
important cases such as the linear case discussed in the next section.
Moreover, they offer important advantages which makes them often clearly
preferred. One reason for this is that they are typically significantly faster
to learn, as we have seen in Chapters &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; and 7. Another is that
they enable learning to be continual and online, without waiting for the end of
an episode. This enables them to be used on continuing problems and provides
computational advantages. A prototypical semi-gradient method is semi-gradient
TD(0), which uses U&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;== R&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+i + Yv(S&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+i,w) as its target. Complete pseudocode for this method is given in
the box below.&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:10.9pt;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:12.0pt;mso-line-height-rule:exactly;background:
black&#39;&gt;&lt;span class=20pt&gt;&lt;span lang=EN-US&gt;Semi-gradient TD(&lt;/span&gt;&lt;/span&gt;&lt;span
class=211pt1&gt;&lt;span lang=EN-US style=&#39;font-size:11.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=20pt&gt;&lt;span lang=EN-US&gt;) for estimating V Vn&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:12.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Input: the policy &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;to be
evaluated&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:4.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:14.0pt;line-height:12.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Input: a differentiable
function &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;V &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;: S+ x R&lt;sup&gt;d&lt;/sup&gt; R such that &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(terminal&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;-) = 0&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize value-function weights &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;arbitrarily (e.g., &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;span
class=11pt&gt;&lt;span lang=EN-US style=&#39;font-size:11.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat (for each episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:29.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:29.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat
(for each step of episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:29.0pt;text-indent:15.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Choose &lt;span
class=afb&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;
mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(-|&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:139.0pt;margin-bottom:0cm;
margin-left:44.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Take
action &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, observe &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;R, S&lt;/span&gt;&lt;/span&gt;&lt;span class=afb&gt;&lt;span lang=EN-US&gt;&#39; &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w w &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+ &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;a
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;[&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;R &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+ yv(S&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;,w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) \A1\AA &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S,w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) Vf)(&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;S,w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:139.0pt;margin-bottom:42.0pt;
margin-left:29.0pt;text-indent:15.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;S &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;sup&gt;;&lt;/sup&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;until &lt;span class=afb&gt;S&lt;sup&gt;f&lt;/sup&gt;&lt;/span&gt; is terminal&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;Example &lt;/span&gt;&lt;/span&gt;&lt;span class=11pt&gt;&lt;span lang=EN-US
style=&#39;font-size:11.0pt&#39;&gt;9&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=11pt&gt;&lt;span lang=EN-US
style=&#39;font-size:11.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;: State Aggregation on the &lt;/span&gt;&lt;/span&gt;&lt;span
class=11pt&gt;&lt;span lang=EN-US style=&#39;font-size:11.0pt&#39;&gt;1000&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;-state Random Walk &lt;/span&gt;&lt;/span&gt;&lt;span
class=afb&gt;&lt;span lang=EN-US&gt;State aggregation&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; is
a simple form of generalizing function approximation in which states are
grouped together, with one estimated value (one component of the weight vector &lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) for each group. The value of a state is estimated as its group\A1\AFs
component, and when the state is updated, that component alone is updated.
State aggregation is a special case of SGD (9.6) in which the gradient, VV(S&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;wt&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;), is 1 for S&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;\A1\AFs group\A1\AFs component
and &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; for the other components.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Consider a 1000-state version
of the random walk task (Examples 6.2 and 7.1). The states are numbered from 1
to 1000, left to right, and all episodes begin near the center, in state 500.
State transitions are from the current state to one of the 100 neighboring
states to its left, or to one of the &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;100&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; neighboring states
to its right, all with equal probability. Of course, if the current state is
near an edge, then there may be fewer than 100 neighbors on that side of it. In
this case, all the probability that would have gone into those missing
neighbors goes into the probability of terminating on that side (thus, state 1
has a 0.5 chance of terminating on the left, and state 950 has a 0.25 chance of
terminating on the right). As usual, termination on the left produces a reward
of \A1\AA&lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, and termination on the right produces a reward of +&lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. All other transitions have a reward of zero. We use this task as a
running example throughout this section.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Figure 9.1 shows the true
value function V&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;for this task. It is nearly a straight
line, but tilted slightly toward the horizontal and curving further in this
direction for the last &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;100&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; states at each end.
Also shown is the final approximate value function learned by the gradient
Monte-Carlo algorithm with state aggregation after 100,000 episodes with a step
size of &lt;span class=afb&gt;a&lt;/span&gt; = 2 x 10&lt;sup&gt;-5&lt;/sup&gt;. For the state
aggregation, the 1000 states were partitioned into &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; groups of &lt;/span&gt;&lt;span
class=9pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;100&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; states each (i.e., states &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1-100&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; were one group,
states 101-200 were another, and so on). The staircase effect shown in the
figure is typical of state aggregation; within each group, the approximate
value is constant, and it changes abruptly from one group to the next. These
approximate values are&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection213&gt;

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     &lt;p class=263 style=&#39;line-height:12.25pt;mso-line-height-rule:exactly;
     background:transparent&#39;&gt;&lt;span class=26Exact&gt;&lt;span lang=EN-US
     style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;Figure 9.1: Function
     approximation by state aggregation on the 1000-state random walk task,
     using the gradient Monte Carlo algorithm (page 216).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
     &lt;/div&gt;
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&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
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&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection215&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:1.25pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;close to the global minimum of the
MSVE (9.1).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:51.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Some of the details of the approximate values are best appreciated
by reference to the state distribution &amp;quot; for this task, shown in the lower
portion of the figure with a right-side scale. State 500, in the center, is the
first state of every episode, but it is rarely visited again. On average, about
1.37% of the time steps are spent in the start state. The states reachable in
one step from the start state are the second most visited, with about 0.17% of
the time steps being spent in each of them. From there &amp;quot; falls off almost
linearly, reaching about 0.0147% at the extreme states 1 and 1000. The most
visible effect of the distribution is on the leftmost groups, whose values are
clearly shifted higher than the unweighted average of the true values of states
within the group, and on the rightmost groups, whose values are clearly shifted
lower. This is due to the states in these areas having the greatest asymmetry
in their weightings by &lt;/span&gt;&lt;span class=MingLiUfb&gt;&lt;span style=&#39;font-size:
8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\B2\B7&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;For example, in the leftmost group, state 99 is
weighted more than 3 times more strongly than state 0. Thus the estimate for
the group is biased toward the true value of state 99, which is higher than the
true value of state 0.&lt;/span&gt;&lt;/p&gt;

&lt;p class=109 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l88 level1 lfo37;tab-stops:36.7pt;background:transparent&#39;&gt;&lt;a
name=bookmark147&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;9.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Linear Methods&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;One of the most important special cases of function approximation is
that in which the approximate function, &lt;span class=1pt4&gt;V(-,&lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=1pt4&gt;&lt;span
lang=EN-US&gt;),&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; is a linear function of the weight
vector, &lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. Corresponding to every state s, there is a real-valued vector of
features &lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=1pt4&gt;&lt;span lang=EN-US&gt;(s)== &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(xi(s), X&lt;/span&gt;&lt;span
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class=1pt4&gt;&lt;span lang=EN-US&gt;(s),...,&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; Xd(s))&lt;sup&gt;T&lt;/sup&gt;,
with the same number of components as &lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. The features may be constructed
from the states in many different ways; we cover a few possi&amp;shy;bilities in the
next sections. However the features are constructed, the approximate&lt;br
clear=all style=&#39;page-break-before:always&#39;&gt;
state-value function is given by the inner product between &lt;/span&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;span
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lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;d&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(9.7)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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&lt;/v:shape&gt;&lt;span class=295pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;{&lt;/span&gt;&lt;/span&gt;&lt;span
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class=295pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
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class=20pt0&gt;&lt;span lang=EN-US&gt;^ WjXj&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=20pt0&gt;&lt;span
lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=20pt0&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
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transparent&#39;&gt;&lt;span lang=EN-US&gt;In this case the approximate value function is
said to be &lt;span class=afb&gt;linear in the weights&lt;/span&gt;, or simply &lt;span
class=afb&gt;linear.&lt;/span&gt; The individual functions Xi : S R are called &lt;span
class=afb&gt;basis functions&lt;/span&gt; because they form a linear basis for the set
of approximate functions of this form. Construct&amp;shy;ing n-dimensional feature
vectors to represent states is the same as selecting a set of &lt;span class=afb&gt;n&lt;/span&gt;
basis functions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.35pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;It is natural to use SGD updates with linear function approximation.
The gradient of the approximate value function with respect to &lt;/span&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;in this
case is&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.75pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;mso-list:l96 level1 lfo38;
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class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) = &lt;/span&gt;&lt;span
class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(s).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Thus, the general SGD update (9.6) reduces to a
particularly simple form in the linear case.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
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transparent&#39;&gt;&lt;span lang=EN-US&gt;Because it is so simple, the linear SGD case is
one of the most favorable for mathematical analysis. Almost all useful
convergence results for learning systems of all kinds are for linear (or
simpler) function approximation methods.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In particular, in the linear case there is only
one optimum (or, in degenerate cases, one set of equally good optima), and thus
any method that is guaranteed to converge to or near a local optimum is
automatically guaranteed to converge to or near the global optimum. For
example, the gradient Monte Carlo algorithm presented in the previous section
converges to the global optimum of the MSVE under linear function approximation
if a is reduced over time according to the usual conditions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.15pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The semi-gradient TD(0) algorithm presented in the previous section
also con&amp;shy;verges under linear function approximation, but this does not follow
from general results on SGD; a separate theorem is necessary. The weight vector
converged to is also not the global optimum, but rather a point near the local
optimum. It is useful to consider this important case in more detail,
specifically for the continuing case. The update at each time t is&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
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lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+i ==&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(9.8)&lt;/span&gt;&lt;/p&gt;

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transparent&#39;&gt;&lt;span lang=EN-US&gt;where here we have used the notational shorthand &lt;/span&gt;&lt;span
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    &lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
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    &lt;![if !mso]&gt;&lt;/td&gt;
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  &lt;/table&gt;
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&lt;/v:shape&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;E&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;[&lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;+i|w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t] = &lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t + a(&lt;/span&gt;&lt;span class=ArialUnicodeMSe&gt;&lt;span lang=EN-US&gt;b \A1\AA Aw&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t),&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-left:28.0pt;line-height:12.0pt;mso-line-height-rule:
exactly;tab-stops:right 400.1pt;background:transparent&#39;&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;b == &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;E&lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span lang=EN-US&gt;[R&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang3&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt;+ix&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang3&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt;] &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang3&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;d&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=51Batang3&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt;and A == &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;E &lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang3&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;(x&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang3&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;t \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;^x&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang3&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=513&gt;&lt;span
lang=EN-US&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang3&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;)&lt;sup&gt;T&lt;/sup&gt; G &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;d&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=51Batang3&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt; x
&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;d&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=51Batang3&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=513&gt;&lt;span lang=EN-US&gt;(9.10)&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:11.0pt;margin-bottom:9.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;From (9.9) it is clear that, if the system converges, it must
converge to the weight vector &lt;span class=aff6&gt;wtd&lt;/span&gt; at which&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.15pt;
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background:transparent&#39;&gt;&lt;span lang=EN-US&gt;b \A1\AA Awtd = &lt;/span&gt;&lt;span class=9pt5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
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    class=510ptExact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;b = Awtd &lt;sub&gt;A&lt;/sub&gt;&lt;/span&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;/sup&gt;&lt;sub&gt;&lt;span
lang=EN-US&gt;b&lt;/span&gt;&lt;/sub&gt;&lt;span class=12pt0&gt;&lt;sub&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;.&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:1.25pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2ArialUnicodeMS1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=20pt0&gt;&lt;span lang=EN-US&gt;TD&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:11.0pt;margin-bottom:15.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;This quantity is called the &lt;span class=afb&gt;TD fixedpoint&lt;/span&gt;. In
fact linear semi-gradient TD(0) con&amp;shy;verges to this point. Some of the theory
proving its convergence, and the existence of the inverse above, is given in
the box.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.75pt;
margin-left:16.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span
class=af7&gt;&lt;span lang=EN-US&gt;Proof of Convergence of Linear TD(0)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:27.0pt;margin-bottom:9.15pt;
margin-left:0cm;text-indent:16.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;What properties assure
convergence of the linear TD(0) algorithm (9.8)? Some insight can be gained by
rewriting (9.9) as&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:7.05pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
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    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(9.12)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;E[wt+i|wt] = (I \A1\AA aA)wt + ab.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:27.0pt;margin-bottom:0cm;
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transparent&#39;&gt;&lt;span lang=EN-US&gt;Note that the matrix A multiplies the weight
vector wt and not b; only A is important to convergence. To develop intuition,
consider the special case in which A is a diagonal matrix. If any of the
diagonal elements are negative, then the corresponding diagonal element of I \A1\AA
aA will be greater than one, and the corresponding component of wt will be
amplified, which will lead to divergence if continued. On the other hand, if
the diagonal elements of A are all positive, then a can be chosen smaller than
one over the largest of them, such that I \A1\AA aA is diagonal with all diagonal
elements between 0 and 1. In this case the first term of the update tends to
shrink wt, and stability is assured. In general case, wt will be reduced toward
zero whenever A is &lt;span class=afb&gt;positive definite,&lt;/span&gt; meaning y&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
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the inverse A&lt;/span&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; exists.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:27.0pt;margin-bottom:0cm;
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lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &amp;lt; 1, the
A matrix (9.10) can be written&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

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class=7ArialUnicodeMS&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=670 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.7pt;
margin-left:112.0pt;line-height:10.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=67CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;X&lt;sup&gt;t&lt;/sup&gt;D(I &lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\AA Y &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;P)X&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection218&gt;

&lt;p class=MsoNormal style=&#39;line-height:10.4pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection219&gt;

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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:5.0pt;margin-bottom:
    0cm;margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:
    inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;the probability matrix of these
    on its diagonal,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;where &amp;quot;(s) is the stationary distribution under
n, p(s&lt;/span&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;/&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;|s) is of transition from s to s&lt;/span&gt;&lt;span class=12pt0&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;/&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;under
policy n, P is the |S| x |S| probabilities, D is the |S| x |S| diagonal matrix
with the &amp;quot;(s)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;and X is the |S| x &lt;span class=afb&gt;d&lt;/span&gt; matrix with x(s) as its
rows. From here it is clear that&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;the inner matrix D(I - &lt;/span&gt;&lt;span
class=CenturySchoolbookf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;y&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;P) is key to determining the positive definiteness of A.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:15.15pt;
margin-left:16.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
12.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;For a key matrix of this type, positive definiteness is assured if
all of its columns sum to a nonnegative number. This was shown by Sutton (1988,
p. 27) based on two previously established theorems. One theorem says that any
matrix M is positive definite if and only if the symmetric matrix S = M + M&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;is positive definite (Sutton 1988, appendix). The second theorem
says that any symmetric real matrix S is positive definite if all of its
diagonal entries are positive and greater than the sum of the corresponding
off-diagonal entries (Varga 1962, p. 23). For our key matrix, D(I - &lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;P), the diagonal entries are positive and the off-diagonal entries
are negative, so all we have to show is that each row sum plus the
corresponding column sum is positive. The row sums are all positive because P
is a stochastic matrix and &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &amp;lt; 1. Thus it only
remains to show that the column sums are nonnegative. Note that the row vector
of the column sums of any matrix M can be written as 1&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;M, where 1 is the column vector with all components equal to 1. Let &lt;span
class=afff7&gt;fx&lt;/span&gt; denote the |S|-vector of the &amp;quot;(s), where &lt;span
class=afff7&gt;x&lt;/span&gt; = P&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;X by
virtue of &amp;quot; being the stationary distribution. The column sums of our key
matrix, then, are:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.0pt;
margin-left:44.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;D(I
- &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;P) = x&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(I - &lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;P)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:110.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=X&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;- 7X&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;P&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:110.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:18.5pt;mso-line-height-rule:exactly;
tab-stops:right 383.6pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=x&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;- &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=afff7&gt;&lt;span lang=EN-US&gt;X&lt;sup&gt;T&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(because
&lt;span class=afff7&gt;x&lt;/span&gt; is the stationary distribution)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.05pt;
margin-left:110.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:18.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;=&lt;sup&gt;(1&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt; -&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; 7)M,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:11.8pt;
margin-left:16.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;all components of which are positive. Thus, the key matrix and its A
matrix are positive definite, and on-policy TD(0) is stable. (Additional
conditions and a schedule for reducing &lt;span class=afff7&gt;a&lt;/span&gt; over time are
needed to prove convergence with probability one.)&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f7 align=left style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:
15.35pt;margin-left:0cm;text-align:left;text-indent:15.0pt;line-height:13.7pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;At the TD
fixedpoint, it has also been proven (in the continuing case) that the MSVE is
within a bounded expansion of the lowest possible error:&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f7 style=&#39;margin-left:28.0pt;line-height:9.5pt;mso-line-height-rule:
exactly;tab-stops:right 401.9pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;MSVE(&lt;/span&gt;&lt;span
class=2ArialUnicodeMS4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=2CenturySchoolbook4&gt;&lt;sub&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;TD&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) ^ -^minMSVE(&lt;/span&gt;&lt;span class=2ArialUnicodeMS4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;span class=2ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(9.13)&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f7 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.25pt;
margin-left:110.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=29pt1&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=29pt1&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;mso-ansi-language:EN-US;
mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[1]&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; - &lt;/span&gt;&lt;span class=2Georgia&gt;&lt;span lang=EN-US&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f7 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:2.8pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;That is, the asymptotic error of the TD method is
no more than times the small&amp;shy;est possible error, that attained in the limit by
the Monte Carlo method. Because &lt;/span&gt;&lt;span class=2Georgia&gt;&lt;span lang=EN-US&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;is often near one, this expansion factor can be quite large, so
there is substantial potential loss in asymptotic performance with the TD
method. On the other hand, recall that the TD methods are often of vastly
reduced variance compared to Monte Carlo methods, and thus faster, as we saw in
Chapters &lt;/span&gt;&lt;span class=29pt1&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; and 7. Which method will be best depends on the nature of the
approximation and problem, and on how long learning contiunues.&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f7 align=left style=&#39;margin-right:1.0pt;text-align:left;text-indent:
15.0pt;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;A bound analogous to (9.13) applies to other on-policy bootstrapping
methods as well. For example, linear semi-gradient DP (Eq. 9.6 with &lt;/span&gt;&lt;span
class=2ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;U&lt;/span&gt;&lt;/span&gt;&lt;span
class=2CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;== E&lt;span class=2c&gt;&lt;sub&gt;a&lt;/sub&gt;&lt;/span&gt; &lt;/span&gt;&lt;span
class=2ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=2ArialUnicodeMS5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;J&lt;/span&gt;&lt;span
class=2ArialUnicodeMS5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
class=2CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) E&lt;/span&gt;&lt;span class=2CenturySchoolbook4&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;span
class=2CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;r&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;p(s&lt;sup&gt;;&lt;/sup&gt;, r|St, a)[r + T^s&#39;&lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;^)]) with backups according to the on-policy
distribution will also converge to the TD fixedpoint. One-step semi-gradient &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;action-value&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;methods, such as semi-gradient Sarsa(0) covered in
the next chapter converge to an analogous fixedpoint and an analogous bound.
For episodic tasks, there is a slightly different but related bound (see
Bertsekas and Tsitsiklis, 1996). There are also a few technical conditions on
the rewards, features, and decrease in the step-size parameter, which we have
omitted here. The full details can be found in the original paper (Tsitsiklis
and Van Roy, 1997).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Critical to the these convergence results is that
states are backed up according to the on-policy distribution. For other backup
distributions, bootstrapping methods using function approximation may actually
diverge to infinity. Examples of this and a discussion of possible solution
methods are given in Chapter 11.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Example 9.2:
Bootstrapping on the 1000-state Random Walk &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;State aggre&amp;shy;gation is a special case of linear function
approximation, so let&#39;s return to the &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1000&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;- state random walk to illustrate some of the
observations made in this chapter. The left panel of Figure 9.2 shows the final
value function learned by the semi-gradient TD(0) algorithm (page 217) using
the same state aggregation as in Example 9.1. We see that the near-asymptotic
TD approximation is indeed farther from the true values than the Monte Carlo
approximation shown in Figure 9.1.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.05pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Nevertheless, TD methods retain large potential
advantages in learning rate, and generalize MC methods, as we investigated
fully with the multi-step TD methods of Chapter 7. The right panel of Figure
9.2 shows results with an n-step semi&amp;shy;gradient TD method using state
aggregation and the 1000-state random walk that are strikingly similar to those
we obtained earlier with tabular methods and the 19-state random walk. To
obtain such quantitatively similar results we switched the state aggregation to
20 groups of 50 states each. The 20 groups are then quantitatively close to the
19 states of the tabular problem. In particular, the state transitions&lt;br
clear=all style=&#39;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;span class=ac&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;of
at-most 100 states to the right or left, or 50 states on average, were
quantitively analogous to the single-state state transitions of the tabular
system. To complete the match, we use here the same performance measure\A1\AAan
unweighted average of the RMS error over all states and over the first 10
episodes\A1\AArather than a MSVE objective as is otherwise more appropriate when
using function approximation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:3.0pt;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The semi-gradient n-step TD algorithm we used in
this example is the natural extension of the tabular n-step TD algorithm
presented in Chapter 7 to semi-gradient function approximation. The key
equation, analogous to (7.2), is&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:24.0pt;mso-line-height-rule:exactly;tab-stops:
right 403.6pt;background:transparent&#39;&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+n = &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+n&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;i + a [Gt&lt;/span&gt;&lt;span class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt;
mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+n \A1\AA v(St,&lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;sub&gt;+ra&lt;/sub&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;i)] W(St,&lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;sub&gt;+ra&lt;/sub&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;i),&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &amp;lt; t &amp;lt; T, (9.14)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:24.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;where the n-step return is generalized from (7.1)
to&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.4pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
14.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 311.9pt 326.7pt 326.7pt 341.45pt 352.95pt center 363.05pt 363.05pt right 403.6pt;
background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t:t+n
= &lt;sup&gt;R&lt;/sup&gt;t+i + Y&lt;sup&gt;R&lt;/sup&gt;t&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + \A1\F6 \A1\F6 \A1\F6 + Y&lt;sup&gt;n iR&lt;/sup&gt;t+n
+ Y&lt;sup&gt;nV(S&lt;/sup&gt;t+n&lt;sup&gt;,&lt;/sup&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+n&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;i),&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&amp;lt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;t&lt;/sup&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;&amp;lt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;T&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\AA&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;n&lt;/sup&gt;-&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(9.15)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.2pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Pseudocode for the complete algorithm is given in the box below.&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.25pt;
margin-left:2.0pt;text-indent:14.0pt;line-height:9.5pt;mso-line-height-rule:
exactly;background:black&#39;&gt;&lt;span class=51Batang0&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=515&gt;&lt;span lang=EN-US&gt;-step
semi-gradient TD for estimating &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang0&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;v &lt;/span&gt;&lt;/span&gt;&lt;span class=51MingLiU0&gt;&lt;span
style=&#39;font-size:5.0pt;mso-ansi-language:ZH-TW;font-weight:normal&#39;&gt;\B0\D1&lt;/span&gt;&lt;/span&gt;&lt;span
class=515&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang0&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span
class=515&gt;&lt;span lang=EN-US&gt;^&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Input: the policy n to be evaluated&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Input: a differentiable function v : S+ x R&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;d&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;R such that v(terminal,-) = 0&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Parameters: step size a G (0,1], a positive
integer n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.0pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;All store and access operations (S&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;and R&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) can take their index
mod n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize value-function weights &lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;arbitrarily (e.g., &lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat (for each episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:215.0pt;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
and store So = terminal T ^&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For t = 0,1, 2,...:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;| If t &amp;lt; T, then:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:55.9pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Take an
action according to n(-|S&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:55.9pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Observe and
store the next reward as R&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+i and the next
state as S&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+i&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:55.9pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;If S&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+i is terminal, then T \A1\AA t + 1&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:40.8pt 121.45pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf2&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;\A1\AA t \A1\AA n + &lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;span
class=CenturySchoolbookf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;is the time whose state\A1\AFs estimate is being updated)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:40.8pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;If &lt;/span&gt;&lt;span
class=CenturySchoolbookf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&amp;gt; 0:&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;line-height:9.5pt;mso-line-height-rule:
exactly;tab-stops:55.9pt;background:transparent&#39;&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21a&gt;&lt;span lang=EN-US&gt;g&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;span class=21a&gt;&lt;span
lang=EN-US&gt;y&lt;/span&gt;&lt;/span&gt;&lt;span class=21b&gt;&lt;span lang=EN-US&gt; &lt;sup&gt;i-T-&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=21b&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.2pt;mso-line-height-rule:exactly;
tab-stops:121.45pt 310.3pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;| If &lt;/span&gt;&lt;span
class=CenturySchoolbookf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+ n &amp;lt; T,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;then:
G \A1\AA G + Y&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;v(S&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sub&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;r&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(G&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sub&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;r&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sub&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;r&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.2pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;| &lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+ a [G \A1\AA v(S&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sub&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;r&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)] W(S&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sub&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;r&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.2pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Until &lt;/span&gt;&lt;span
class=CenturySchoolbookf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;= T \A1\AA 1&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection220&gt;

&lt;p class=823 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l25 level1 lfo39;
tab-stops:38.9pt;background:transparent&#39;&gt;&lt;a name=bookmark150&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;9.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Feature Construction for Linear
Methods&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Linear methods are interesting because
of their convergence guarantees, but also because in practice they can be very
efficient in terms of both data and computation. Whether or not this is so
depends critically on how the states are represented in terms of the features,
which we investigate in this large section. Choosing features appropriate to
the task is an important way of adding prior domain knowledge to reinforcement
learning systems. Intuitively, the features should correspond to the natural
features of the task, those along which generalization is most appropriate. If
we are valuing geometric objects, for example, we might want to have features
for each possible shape, color, size, or function. If we are valuing states of
a mobile robot, then we might want to have features for locations, degrees of
remaining battery power, recent sonar readings, and so on.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:32.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In general, we also need features for combinations of these natural
qualities. This is because the linear form prohibits the representation of
interactions between features, such as the presence of feature &lt;span
class=afff7&gt;i&lt;/span&gt; being good only in the absence of feature &lt;span
class=afff7&gt;j&lt;/span&gt;. For example, in the pole-balancing task (Example 3.4), a
high angular velocity may be either good or bad depending on the angular
position. If the angle is high, then high angular velocity means an imminent
danger of falling\A1\AAa bad state\A1\AAwhereas if the angle is low, then high angular
velocity means the pole is righting itself\A1\AAa good state. In cases with such
interactions one needs to introduce features for combinations of feature values
when using linear function approximation methods. In the following subsections
we consider a variety of general ways of doing this.&lt;/span&gt;&lt;/p&gt;

&lt;p class=691 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.85pt;
margin-left:0cm;text-indent:0cm;line-height:10.5pt;mso-line-height-rule:exactly;
mso-list:l72 level1 lfo40;tab-stops:38.9pt;background:transparent&#39;&gt;&lt;a
name=bookmark151&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;9.5.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Polynomials&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For multi-dimensional continuous state
spaces, function approximation for reinforce&amp;shy;ment learning has much in common
with the familiar tasks of interpolation and regression, which aim to define
functions between and/or beyond given samples of function values. Various
families of polynomials commonly used for these tasks can also be used in
reinforcement learning. Here we discuss only the most basic polyno&amp;shy;mial family.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Suppose a reinforcement
learning problem\A1\AFs state space is two-dimensional so that each state is a real
vector &lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= (&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;,s&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. You might
choose to represent each &lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;with the feature
vector &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;, s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;i&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;, s&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;, s&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;in order to
take the interaction of the state variables into account by weighting the
product &lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; in an
appropriate way. Or you might choose to use feature vectors like &lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;, s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;i&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;, s&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;, s&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;, s&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;, s&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;, s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;y&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;, s&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;, s&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;to take more
complex interactions into account. Using these features means that functions
are approximated as multi-dimensional quadratic functions\A1\AAeven though the
approximation is still linear in the weights that have to be learned.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;These example feature vectors
are the result of selecting sets of polynomial basis functions, which are
defined for any dimension and can encompass highly-complex interactions among
the state variables:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:17.0pt;margin-bottom:15.15pt;
margin-left:15.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;For &lt;span class=afff7&gt;d&lt;/span&gt; state variables taking real values,
every state &lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is a &lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;d&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;-dimensional vec&amp;shy;tor (&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;, s&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;,..., s&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;d&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;of real
numbers. Each &lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;d&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;-dimensional polynomial
basis function &lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;can be
written as&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.5pt;
margin-left:43.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 384.05pt;
background:transparent&#39;&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) = n&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;d&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sub&gt;&lt;span lang=EN-US&gt;=&lt;/span&gt;&lt;/sub&gt;&lt;span
lang=EN-US&gt;i&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;C&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;&#39;&lt;sup&gt;j&lt;/sup&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(9.16)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:17.0pt;margin-bottom:12.0pt;
margin-left:15.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where each &lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;C&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;i,j &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is an
integer in the set {0&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;1&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\AD&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;\A3\AC&lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;N&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;} for an integer &lt;span class=afff7&gt;N&lt;/span&gt; &amp;gt; 0. These functions
make up the order-&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;N &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;polynomial basis,
which contains (&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;N &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+ 1)&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;d&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;different functions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Higher-order polynomial bases allow for more accurate approximations
of more complicated functions. But because the number of functions in an
order-N poly&amp;shy;nomial basis grows exponentially with the state space dimension
(for N &amp;gt; 0), it is generally necessary to select a subset of them for
function approximation. This can be done using prior beliefs about the nature
of the function to be approximated, and some automated selection methods
developed for polynomial regression can be adapted to deal with the incremental
and nonstationary nature of reinforcement learning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.7pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;Exercise 9.1 &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Why does (9.16) define (N + 1)&lt;sup&gt;d&lt;/sup&gt; distinct functions for
dimension d? \A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:17.95pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:14.15pt;mso-line-height-rule:exactly;tab-stops:right 400.3pt;
background:transparent&#39;&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;Exercise
9.2 &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;Give N and the Ci,j defining the basis
functions that produce feature vectors (&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, si, s&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, sis&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, sg, s&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, sis&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, sis&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, s&lt;/span&gt;&lt;span class=9pt8&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;sup&gt;T&lt;/sup&gt;.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=691 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.05pt;
margin-left:0cm;text-indent:0cm;line-height:10.5pt;mso-line-height-rule:exactly;
mso-list:l72 level1 lfo40;tab-stops:41.05pt;background:transparent&#39;&gt;&lt;a
name=bookmark152&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;9.5.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Fourier Basis&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Another linear function approximation method is based on the
time-honored Fourier series, which expresses periodic functions as a weighted
sum of sine and cosine basis functions of different frequencies. (A function &lt;span
class=afff7&gt;f&lt;/span&gt; is periodic if &lt;span class=afff7&gt;f&lt;/span&gt; (x) = &lt;span
class=afff7&gt;f&lt;/span&gt; (x + T) for all &lt;span class=afff7&gt;x&lt;/span&gt; and some period
T.) The Fourier series and the more general Fourier transform are widely used
in applied sciences because\A1\AAamong many other reasons\A1\AAif a function to be
approximated is known, then the basis function weights are given by simple
formulae and, further, with enough basis functions essentially any function can
be approximated as accurately as desired. In reinforcement learning, where the
functions to be approximated are unknown, Fourier basis functions are of
interest because they are easy to use and can perform well in a range of reinforcement
learning problems. Konidaris, Osentoski, and Thomas (2011) presented the
Fourier basis in a simple form suitable for reinforcement learning problems
with multi-dimensional continuous state spaces and functions that do not have
to be periodic.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;First consider the
one-dimensional case. The usual Fourier series representation of a function of
one dimension having period T represents the function as a linear com&amp;shy;bination
of sine and cosine functions that are each periodic with periods that evenly
divide T (in other words, whose frequencies are integer multiples of a
fundamental frequency 1/T). But if you are interested in approximating an
aperiodic function defined over a bounded interval, you can use these Fourier
basis functions with T&lt;br clear=all style=&#39;page-break-before:always&#39;&gt;
set to the length the interval. The function of interest is then just one
period of the periodic linear combination of the sine and cosine basis
functions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Furthermore, if you set T to twice the length of
the interval of interest and restrict attention to the approximation over the
half interval [0,T/2], you can use just the cosine basis functions. This is
possible because you can represent any &lt;span class=afff7&gt;even&lt;/span&gt; function,
that is, any function that is symmetric about the origin, with just the cosine
basis functions. So any function over the half-period [0, T/2] can be
approximated as closely as desired with enough cosine basis functions. (Saying
\A1\B0any function\A1\B1 is not exactly correct because the function has to be
mathematically well-behaved, but we skip this technicality here.)
Alternatively, it is possible to use just the sine basis functions, linear
combinations of which are always &lt;span class=afff7&gt;odd&lt;/span&gt; functions, that
is functions that are anti-symmetric about the origin. But it is generally
better to keep just the cosine basis functions because \A1\B0half-even\A1\B1 functions
tend to be easier to approximate than \A1\B0half-odd\A1\B1 functions since the latter are
often discontinuous at the origin.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Following this logic and letting T = 2 so that
the functions are defined over the half-T interval [0,1], the one-dimensional
order-N Fourier cosine basis consists of the &lt;span class=afff7&gt;N&lt;/span&gt; + 1
functions&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=center style=&#39;margin-top:0cm;margin-right:1.0pt;
margin-bottom:2.8pt;margin-left:0cm;text-align:center;text-indent:0cm;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;X&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(s) = cos(ins), s &lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;[0,1],&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_474&#34; o:spid=&#34;_x0000_s1389&#34; type=&#34;#_x0000_t75&#34;
 alt=&#34;image89&#34; style=&#39;position:absolute;left:0;text-align:left;margin-left:204.55pt;
 margin-top:36pt;width:88.3pt;height:70.55pt;z-index:251824938;visibility:visible;
 mso-wrap-style:square;mso-width-percent:0;mso-height-percent:0;
 mso-wrap-distance-left:5pt;mso-wrap-distance-top:0;mso-wrap-distance-right:5pt;
 mso-wrap-distance-bottom:0;mso-position-horizontal:absolute;
 mso-position-horizontal-relative:margin;mso-position-vertical:absolute;
 mso-position-vertical-relative:text;mso-width-percent:0;mso-height-percent:0;
 mso-width-relative:page;mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image088.png&#34;
  o:title=&#34;image89&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;v:shape id=&#34;Picture_x0020_473&#34; o:spid=&#34;_x0000_s1388&#34; type=&#34;#_x0000_t75&#34;
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 margin-top:36.25pt;width:87.85pt;height:70.1pt;z-index:251825962;visibility:visible;
 mso-wrap-style:square;mso-width-percent:0;mso-height-percent:0;
 mso-wrap-distance-left:5pt;mso-wrap-distance-top:0;mso-wrap-distance-right:5pt;
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 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image089.png&#34;
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&lt;/v:shape&gt;&lt;v:shape id=&#34;Picture_x0020_472&#34; o:spid=&#34;_x0000_s1387&#34; type=&#34;#_x0000_t75&#34;
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 mso-position-vertical-relative:text;mso-width-percent:0;mso-height-percent:0;
 mso-width-relative:page;mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image090.png&#34;
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  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
    text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:
    right 400.55pt;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;Figure 9.3: One-dimensional
    Fourier cosine basis functions&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
    class=ArialUnicodeMSf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:
    0pt&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:
    9.0pt;letter-spacing:0pt&#39;&gt;= 1&lt;/span&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSf2&gt;&lt;span
    lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:0pt&#39;&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span
    class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
    class=ArialUnicodeMSf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:
    0pt&#39;&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:
    9.0pt;letter-spacing:0pt&#39;&gt;3&lt;/span&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSf2&gt;&lt;span
    lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:0pt&#39;&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span
    class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;4,
    for approximat&amp;shy;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-bottom:13.85pt;text-align:justify;
    text-justify:inter-ideograph;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;ing functions over the interval
    [0&lt;/span&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSf2&gt;&lt;span lang=EN-US
    style=&#39;font-size:8.0pt;letter-spacing:0pt&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span
    class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;1];
    &lt;/span&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSf2&gt;&lt;span lang=EN-US
    style=&#39;font-size:8.0pt;letter-spacing:0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
    class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;o
    is a constant function. After Konidaris et al. (2011).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
    inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;This same reasoning applies to
    the Fourier cosine series approximation in the multi-dimensional case as
    described in the box at the top of the next page. As an example, consider
    the &lt;/span&gt;&lt;/span&gt;&lt;span class=afff5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;
    letter-spacing:0pt&#39;&gt;d&lt;/span&gt;&lt;/span&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt; = &lt;/span&gt;&lt;/span&gt;&lt;span
    class=0ptExact5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:
    0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:
    9.0pt;letter-spacing:0pt&#39;&gt; case in which s = (si,s&lt;/span&gt;&lt;/span&gt;&lt;span
    class=0ptExact5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:
    0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:
    9.0pt;letter-spacing:0pt&#39;&gt;), where each c&lt;sup&gt;i&lt;/sup&gt; = (ci, c&lt;/span&gt;&lt;/span&gt;&lt;span
    class=0ptExact5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:
    0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:
    9.0pt;letter-spacing:0pt&#39;&gt;)&lt;sup&gt;T&lt;/sup&gt;. Figure 9.4 shows a selection of
    six Fourier cosine basis functions, each labeled by the vector c&lt;sup&gt;i&lt;/sup&gt;
    that defines it (si is the horizontal axis and c&lt;sup&gt;i&lt;/sup&gt; is shown as a
    row vector with the index i omitted). Any zero in c means the function is
    constant along that dimension. So if c = (0, 0), the function is constant
    over both dimensions; if c = (ci, &lt;/span&gt;&lt;/span&gt;&lt;span class=0ptExact5&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
    class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;)
    the function is constant over the second dimension and varies over the
    first with frequency depending on ci; and similarly, for c = (0, c&lt;/span&gt;&lt;/span&gt;&lt;span
    class=0ptExact5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:
    0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:
    9.0pt;letter-spacing:0pt&#39;&gt;). When c = (ci, c&lt;/span&gt;&lt;/span&gt;&lt;span
    class=0ptExact5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:
    0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:
    9.0pt;letter-spacing:0pt&#39;&gt;) with neither cj = &lt;/span&gt;&lt;/span&gt;&lt;span
    class=0ptExact5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:
    0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:
    9.0pt;letter-spacing:0pt&#39;&gt;, the basis function varies along both dimensions
    and represents an interaction between the two state variables. The values
    of ci and c&lt;/span&gt;&lt;/span&gt;&lt;span class=0ptExact5&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
    class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;
    determine the frequency along each dimension, and their ratio gives the
    direction of the interaction.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;for i = 0,&lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;\A1\AD&lt;/span&gt;&lt;span class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\A3\AC&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;N. Figure 9.3 shows one-dimensional Fourier cosine basis functions X&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, for i = 1, 2, 3, 4; xo is a constant function.&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:17.0pt;margin-bottom:12.25pt;
margin-left:15.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.55pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;For a state space that is the d-dimensional unit hypercube with the
origin in one corner, states are real vectors s = (s&lt;sub&gt;i&lt;/sub&gt;&lt;/span&gt;&lt;span
class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\A3\AC&lt;/span&gt;&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\AD&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;\A3\AC&lt;/span&gt;&lt;span lang=EN-US&gt;s^)&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, s^ G
[0,1]. Each function in the order-N Fourier cosine basis can be written&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.75pt;
margin-left:43.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 386.1pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Xi(s) = cos(nc&lt;sup&gt;i&lt;/sup&gt; \A1\F6 s),&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(9.17)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:17.0pt;margin-bottom:9.3pt;
margin-left:15.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.8pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where &lt;span class=afff7&gt;&amp;amp;&lt;/span&gt; = (ci,..., &lt;span class=afff7&gt;c&lt;/span&gt;&lt;sup&gt;l&lt;/sup&gt;&lt;sub&gt;d&lt;/sub&gt;)&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, with cj G {0,..., &lt;span class=afff7&gt;N&lt;/span&gt;} for &lt;span
class=afff7&gt;j&lt;/span&gt; = &lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=ZH-TW style=&#39;font-size:8.0pt;mso-ansi-language:
ZH-TW&#39;&gt;\A1\AD&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A3\AC&lt;/span&gt;&lt;span
lang=EN-US&gt;d and &lt;span class=afff7&gt;i&lt;/span&gt; = 0,..., (N + 1)&lt;sup&gt;d&lt;/sup&gt;. This
defines a function for each of the (N + 1)&lt;sup&gt;d&lt;/sup&gt; possible integer vectors
&lt;span class=afff7&gt;c&lt;/span&gt;&lt;sup&gt;l&lt;/sup&gt;. The dot-product &lt;span class=afff7&gt;c&lt;sup&gt;%&lt;/sup&gt;&lt;/span&gt;
\A1\F6 s has the effect of assigning an in&amp;shy;teger in {&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\AD&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;\A3\AC&lt;/span&gt;&lt;span lang=EN-US&gt;N} to each dimension. As in the one-dimensional
case, this integer determines the function\A1\AFs frequency along that dimension.
The basis functions can of course be shifted and scaled to suit the bounded
state space of a particular application.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:2.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:15.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Konidaris et al. (2011) found
that when using Fourier cosine basis functions with a learning algorithm such
as (9.6), semi-gradient TD(0), or semi-gradient Sarsa, it is helpful to use a
different step-size parameter for each basis function. If a is the basic
step-size parameter, they suggest setting the step-size parameter for basis
function&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-top:0cm;margin-right:2.0pt;
margin-bottom:3.65pt;margin-left:0cm;text-align:right;text-indent:0cm;
line-height:11.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\B6\F8&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;to a&amp;lt; = a/y^(ci&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;)&lt;sup&gt;2&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + ... + (c&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;^)&lt;sup&gt;2&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; (except
when each cj =&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, in which case a&amp;lt; = a).&lt;/span&gt;&lt;/p&gt;

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    &lt;p class=MsoNormal align=center style=&#39;text-align:center&#39;&gt;&lt;span lang=EN-US
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    background:transparent&#39;&gt;&lt;span class=Exact0&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;Figure 9.4: A selection of six
    two-dimensional Fourier cosine basis functions, each labeled by the vector &lt;/span&gt;&lt;/span&gt;&lt;span
    class=afff6&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;c&lt;sup&gt;l&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
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    is shown as a row vector with the index &lt;/span&gt;&lt;/span&gt;&lt;span
    class=ArialUnicodeMSf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Fourier cosine basis functions with Sarsa were found
to produce good performance compared to several other collections of basis
functions, including polynomial and&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:162.4pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=217 align=center&gt;
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&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Courier New&#34;;
mso-fareast-font-family:&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;
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&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
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&lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;line-height:
13.55pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;radial basis functions, on several reinforcement learning tasks. Not
surprisingly, how&amp;shy;ever, Fourier basis functions have trouble with
discontinuities because it is difficult to avoid \A1\B0ringing\A1\B1 around points of
discontinuity unless very high frequency basis functions are included.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;As is true for polynomial approximation, the number
of basis functions in the order-N Fourier cosine basis grows exponentially with
the state space dimension. This makes it necessary to select a subset of these
functions if the state space has high dimension (e.g., d &amp;gt; 5). This can be
done using prior beliefs about the nature of the function to be approximated,
and some automated selection methods can be adapted to deal with the
incremental and nonstationary nature of reinforcement learning. Advantages of
Fourier basis functions in this regard are that it is easy to select functions
by setting the c&lt;sup&gt;i&lt;/sup&gt; vectors to account for suspected interactions
among the state variables, and by limiting the values in the c&lt;sup&gt;j&lt;/sup&gt;
vectors so that the approximation can filter out high frequency components
considered to be noise.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Figure 9.5 shows learning curves comparing the
Fourier and polynomial bases on the 1000-state random walk example. In general,
we do not recommend using the polynomial basis for online learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
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     style=&#39;letter-spacing:1.0pt;font-weight:normal&#39;&gt;1000&lt;/span&gt;&lt;/span&gt;&lt;span
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     0pt&#39;&gt;-state random walk. Shown are learning curves for the gradient MC
     method with Fourier and polynomial bases of order 5, 10, and 20. The
     step-size parameters were roughly optimized for each case: a = 0.0001 for
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     0pt&#39;&gt;Episodes&lt;/span&gt;&lt;/p&gt;
     &lt;/div&gt;
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&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
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&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
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&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
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&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:20.1pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection222&gt;

&lt;p class=436 style=&#39;margin-bottom:1.05pt;text-align:justify;text-justify:inter-ideograph;
line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Exercise 9.3 &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Why does (9.17) define (N + 1)&lt;sup&gt;d&lt;/sup&gt; distinct
functions for dimension d?&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:19.1pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=691 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.95pt;
margin-left:0cm;text-indent:0cm;line-height:10.5pt;mso-line-height-rule:exactly;
mso-list:l72 level1 lfo40;tab-stops:41.15pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;9.5.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Coarse Coding&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;line-height:
13.55pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;Consider a task in which the state set is continuous and
two-dimensional. A state in this case is a point in &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;-space, a vector with two real components. One kind
of feature for this case is those corresponding to &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;circles&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; in state space, as shown in Figure 9.6.&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:108.0pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=144 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=144 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:108.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
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  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
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  108.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span class=83&gt;&lt;span lang=EN-US&gt;Figure 9.6: Coarse coding.
  Generalization from state &lt;/span&gt;&lt;/span&gt;&lt;span class=88pt&gt;&lt;span lang=EN-US
  style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=83&gt;&lt;span
  lang=EN-US&gt; to state &lt;/span&gt;&lt;/span&gt;&lt;span class=88pt&gt;&lt;span lang=EN-US
  style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;s&lt;sup&gt;!&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
  class=83&gt;&lt;span lang=EN-US&gt; depends on the number of their features whose
  receptive fields (in this case, circles) overlap. These states have one
  feature in common, so there will be slight generalization between them.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:21.15pt;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;If the state is inside a circle, then the
corresponding feature has the value 1 and is said to be &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;present;&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; otherwise the feature is 0 and is said to be &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;absent.&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; This kind of 1-0-valued feature is called a &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;binary
feature.&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt; Given a state, which
binary features are present indicate within which circles the state lies, and thus
coarsely code for its location. Representing a state with features that overlap
in this way (although they need not be circles or binary) is known as &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;coarse
coding&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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    &lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;
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    class=430ptExact&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:
    0pt&#39;&gt;Figure 9.7: Generalization in linear function approximation methods is
    determined by the sizes and shapes of the features\A1\AF receptive fields. All
    three of these cases have roughly the same number and density of features.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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&lt;/v:shape&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Assuming linear gradient-descent function
approximation, consider the effect of the size and density of the circles.
Corresponding to each circle is a single weight (a component of &lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;) that is affected by learning. If we train at one
state, a point in the space, then the weights of all circles intersecting that
state will be affected. Thus, by (9.7), the approximate value function will be
affected at all states within the union of the circles, with a greater effect
the more circles a point has \A1\B0in common\A1\B1 with the state, as shown in Figure 9.6.
If the circles are small, then the generalization will be over a short
distance, as in Figure 9.7a, whereas if they are large, it will be over a large
distance, as in Figure 9.7b. Moreover, the shape of the features will determine&lt;br
clear=all style=&#39;page-break-before:always&#39;&gt;
the nature of the generalization. For example, if they are not strictly
circular, but are elongated in one direction, then generalization will be
similarly affected, as in Figure 9.7c.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-bottom:3.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Features with large receptive
fields give broad generalization, but might also seem to limit the learned
function to a coarse approximation, unable to make discrimina&amp;shy;tions much finer
than the width of the receptive fields. Happily, this is not the case. Initial
generalization from one point to another is indeed controlled by the size and
shape of the receptive fields, but acuity, the finest discrimination ultimately
possible, is controlled more by the total number of features.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Example 9.3: Coarseness
of Coarse Coding &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;This example
illustrates the effect on learning of the size of the receptive fields in
coarse coding. Linear function approximation based on coarse coding and (9.6)
was used to learn a one-dimensional square-wave function (shown at the top of
Figure 9.8). The values of this function were used as the targets, Ut. With
just one dimension, the receptive fields were intervals rather than circles.
Learning was repeated with three different sizes of the intervals: narrow,
medium, and broad, as shown at the bottom of the figure. All three cases had
the same density of features, about 50 over the extent of the function being
learned. Training examples were generated uniformly at random over this extent.
The step-size parameter was &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt; = 0.2, where m is the number of features that were present at one
time. Figure 9.8 shows the functions learned in all three cases over the course
of learning. Note that the width of the features had a strong effect early in
learning. With broad features, the generalization tended to be broad; with
narrow features, only the close neighbors of each trained point were changed,
causing the function learned to be more bumpy. However, the final function
learned was affected only slightly by the width of the features. Receptive
field shape tends to have a strong effect on generalization but little effect on
asymptotic solution quality.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

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&lt;div class=WordSection224&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.25pt;
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font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;mso-fareast-font-family:&#34;Century Schoolbook&#34;;
mso-bidi-font-family:&#34;Century Schoolbook&#34;;color:black&#39;&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;9.5.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=516&gt;&lt;span lang=EN-US&gt;Tile Coding&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Tile coding is a form of coarse coding for
multi-dimensional continuous spaces that is flexible and computationally
efficient. It may be the most practical feature repre&amp;shy;sentation for modern
sequential digital computers. Open-source software is available for many kinds
of tile coding.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;In tile coding the receptive
fields of the features are grouped into partitions of the input space. Each
such partition is called a &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;tiling&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;, and each element of the partition is called a &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;tile&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;. For example, the simplest tiling of a
two-dimensional state space is a uniform grid such as that shown on the left
side of Figure 9.9. The tiles or receptive field here are squares rather than
the circles in Figure 9.6. If just this single tiling were used, then the state
indicated by the white spot would be represented by the single feature whose
tile it falls within; generalization would be complete to all states within the
same tile and nonexistent to states outside it. With just one tiling, we would
not have coarse coding by just a case of state aggregation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;To get the strengths of coarse
coding requires overlapping receptive fields, and by definition the tiles of a
partition do not overlap. To get true coarse coding with tile coding, multiple
tilings are used, each offset by a fraction of a tile width. A simple case with
four tilings is shown on the right side of Figure 9.9. Every state, such as
that indicated by the white spot, falls in exactly one tile in each of the four
tilings. These four tiles correspond to four features that become active when
the state occurs. Specifically, the feature vector &lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;(s) has one component for each tile in each tiling.
In this example there are 4 x 4 x 4 = 64 components, all of which will be 0
except for the four corresponding to the tiles that s falls within. Figure 9.10
shows the advantage of multiple offset tilings (coarse coding) over a single
tiling on the &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1000&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;-state random walk example.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;An immediate practical advantage
of tile coding is that, because it works with partitions, the overall number of
features that are active at one time is the same for any state. Exactly one
feature is present in each tiling, so the total number of features present is
always the same as the number of tilings. This allows the step-&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

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     tilings. The space of 1000 states was treated as a single continuous
     dimension, covered with tiles each 200 states wide. The multiple tilings
     were offset from each other by 4 states. The step-size parameter was set
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&lt;div class=WordSection228&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:77.5pt;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;size parameter, a, to be set in
an easy, intuitive way. For example, choosing a = &lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;mm&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;, where &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;m&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; is the number of tilings, results in exact
one-trial learning. If the example s ^ V is trained on, then whatever the prior
estimate, V(s,&lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;sub&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;t&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;), the new estimate will be V(s&lt;/span&gt;&lt;/span&gt;&lt;span
class=43MingLiU&gt;&lt;span style=&#39;font-size:5.5pt;font-weight:normal&#39;&gt;\A3\AC&lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;sub&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
font-weight:normal&#39;&gt;t&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;sub&gt;&lt;span
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class=432&gt;&lt;span lang=EN-US&gt;) = &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;. Usually one wishes to change more slowly than
this, to allow for generalization and stochastic variation in target outputs.
For example, one might choose &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; =&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;,
in which case the estimate for the trained state would move one-&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;tenth of the way to the target in one update, and
neighboring states will be moved less, proportional to the number of tiles they
have in common.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.55pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Tile coding also gains
computational advantages from its use of binary feature vectors. Because each
component is either 0 or 1, the weighted sum making up the approximate value
function (9.7) is almost trivial to compute. Rather than performing n
multiplications and additions, one simply computes the indices of the m&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\B6&lt;/span&gt;&lt;span lang=EN-US&gt;n
active features and then adds up the m corresponding components of the weight
vector.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Generalization occurs to states
other than the one trained if those states fall within any of the same tiles,
proportional to the number of tiles in common. Even the choice of how to offset
the tilings from each other affects generalization. If they are offset
uniformly in each dimension, as they were in Figure 9.9, then different states
can generalize in qualitatively different ways, as shown below in the upper
half of Figure 9.11. Each of the eight subfigures show the pattern of
generalization from a trained state to nearby points. In this example their are
eight tilings, thus &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;64&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt; subregions within a tile that generalize distinctly, but all
according to one of these eight patterns. Note how uniform offsets result in a
strong effect along the diagonal in many patterns. These artifacts can be
avoided if the tilings are offset asymmetrically, as shown in the lower half of
the figure. These lower generalization patterns are better because they are all
well centered on the trained state with no&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br
clear=all style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=133 style=&#39;margin-top:0cm;margin-right:331.0pt;margin-bottom:114.0pt;
margin-left:15.0pt;text-indent:11.0pt;line-height:10.3pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=130&gt;&lt;span lang=EN-US&gt;Possible
generalizations for uniformly offset tilings&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=133 align=center style=&#39;margin-left:7.0pt;text-align:center;
line-height:10.3pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=130&gt;&lt;span lang=EN-US&gt;Possible generalizations for asymmetrically&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=133 style=&#39;margin-bottom:91.85pt;text-align:justify;text-justify:inter-ideograph;
text-indent:15.0pt;line-height:10.3pt;mso-line-height-rule:exactly;tab-stops:
20.05pt;background:transparent&#39;&gt;&lt;span class=130&gt;&lt;span lang=EN-US&gt;offset tilings&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-bottom:29.2pt;text-align:justify;text-justify:inter-ideograph;
line-height:11.75pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Figure 9.11: Why tile asymmetrical offsets are
preferred in tile coding. Shown is the strength of generalization from a
trained state, indicated by the small black plus, to nearby states, for the
case of eight tilings. If the tilings are uniformly offset (above), then there
are diagonal artifacts and substantial variations in the generalization,
whereas with asymmetrically offset tilings the generalization is more spherical
and homogeneous.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-bottom:1.15pt;text-align:justify;text-justify:inter-ideograph;
line-height:9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;obvious asymmetries.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Tilings in all cases are offset from each other by a
fraction of a tile width in each dimension. If &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; denotes the tile width and &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; the number of tilings, then &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;| &lt;/span&gt;&lt;span
lang=EN-US&gt;is a fundamental unit. Within small squares &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;W&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; on a side, all states activate the same tiles, have
the same feature representation, and the same approximated value. If a state is
moved by &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt;font-weight:normal&#39;&gt;f&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt; in
any cartesian direction, the feature representation changes by one
component/tile. Uniformly offset tilings are offset from each other by exactly
this unit distance. For a two-dimensional space, we say that each tiling is
offset by the displacement vector (&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;), meaning that it is offset from the previous
tiling by &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt;font-weight:normal&#39;&gt;f&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;
times this vector. In these terms, the asymmetrically offset tilings shown in
the lower part of Figure 9.11 are offset by a displacement vector of (1, 3).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Extensive studies have been made of the effect of
different displacement vectors on the generalization of tile coding (Parks and
Militzer, 1991; An, 1991; An, Miller and Parks, 1991; Miller, Glanz and Carter,
1991), assessing their homegeneity and tendency toward diagonal artifacts like
those seen for the (&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;) displacement vectors.&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Based on this work, Miller and Glanz (1996)
recommend using displacement vectors consisting of the first odd integers. In
particular, for a continuous space of dimension d, a good choice is to use the
first odd integers (1, 3, 5, 7,..., 2d \A1\AA 1), with &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; (the number of tilings) set to an integer power of
2 greater than or equal to 4d. This is what we have done to produce the tilings
in the lower half of Figure 9.11, in which d = 2, k = 2&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;3&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; &amp;gt; 4d, and the displacement vector is (1, 3). In
a three-dimensional case, the first four tilings would be offset in total from
a base position by (0, 0, 0), (1, 3, 5), (&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;,10), and (3, 9,15). Open-source software that can
efficiently make tilings like this for any d is readily available.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;In choosing a tiling strategy,
one has to pick the number of the tilings and the shape of the tiles. The
number of tilings, along with the size of the tiles, determines the resolution
or fineness of the asymptotic approximation, as in general coarse coding and
illustrated in Figure 9.8. The shape of the tiles will determine the nature of
generalization as in Figure 9.7. Square tiles will generalize roughly equally
in each dimension as indicated in Figure 9.11 (lower). Tiles that are elongated
along one dimension, such as the stripe tilings in Figure 9.12b, will promote
generalization along that dimension. The tilings in Figure 9.12b are also
denser and thinner on the left, promoting discrimination along the horizonal
dimension at lower values along that dimension. The diagonal stripe tiling in
Figure 9.12c will promote generalization along one diagonal. In higher
dimensions, axis-aligned stripes correspond to ignoring some of the dimensions
in some of the tilings, that is, to hyperplanar slices. Irregular tilings such
as shown in Figure 9.12a are also possible, though rare in practice and beyond
the standard software.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.3pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;v:shape
 id=&#34;Picture_x0020_435&#34; o:spid=&#34;_x0000_s1356&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image103&#34;
 style=&#39;position:absolute;left:0;text-align:left;margin-left:278.75pt;
 margin-top:144.25pt;width:89.75pt;height:107.05pt;z-index:251835178;
 visibility:visible;mso-wrap-style:square;mso-width-percent:0;
 mso-height-percent:0;mso-wrap-distance-left:5pt;mso-wrap-distance-top:0;
 mso-wrap-distance-right:5pt;mso-wrap-distance-bottom:0;
 mso-position-horizontal:absolute;mso-position-horizontal-relative:margin;
 mso-position-vertical:absolute;mso-position-vertical-relative:text;
 mso-width-percent:0;mso-height-percent:0;mso-width-relative:page;
 mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image102.jpg&#34;
  o:title=&#34;image103&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;In practice, it is often desirable
to use different shaped tiles in different tilings. For example, one might use
some vertical stripe tilings and some horizontal stripe tilings. This would
encourage generalization along either dimension. However, with stripe tilings
alone it is not possible to learn that a particular conjunction of horizontal
and vertical coordinates has a distinctive value (whatever is learned for it
will bleed into states with the same horizontal and vertical coordinates). For
this one needs the conjunctive rectangular tiles such as originally shown in
Figure 9.9. With multiple tilings\A1\AAsome horizontal, same vertical, and some
conjunctive\A1\AAone can get every&amp;shy;thing: a preference for generalizing along each
dimension, yet the ability to learn&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:107.05pt;mso-element-frame-hspace:
41.75pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
mso-element-anchor-horizontal:column;mso-element-left:41.8pt;mso-element-top:
.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=143&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=143 style=&#39;padding-top:0cm;padding-right:
  41.75pt;padding-bottom:0cm;padding-left:41.75pt&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:107.05pt;mso-element-frame-hspace:41.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:41.8pt;mso-element-top:
  .05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_35&#34;
   o:spid=&#34;_x0000_i1087&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image104&#34; style=&#39;width:90pt;
   height:107.25pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image103.jpg&#34;
    o:title=&#34;image104&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=343 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:14.15pt;
margin-left:1.0pt;line-height:8.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=340&gt;&lt;span lang=EN-US&gt;Log stripes&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Figure 9.12: Tilings need not be grids. They can be
arbitrarily shaped and non-uniform, while still in many cases being
computationally efficient to compute.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection229&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;specific values for conjunctions (see Section &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;16.3 &lt;/span&gt;&lt;span
lang=EN-US&gt;for a case study using this). The choice of tilings determines
generalization, and until this choice can be effectively automated, it is
important that tile coding enables the choice to be made flexibly and in a way
that makes sense to people.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_433&#34; o:spid=&#34;_x0000_s1355&#34; type=&#34;#_x0000_t75&#34;
 alt=&#34;image105&#34; style=&#39;position:absolute;left:0;text-align:left;margin-left:315.5pt;
 margin-top:13.7pt;width:97.9pt;height:97.9pt;z-index:251836202;visibility:visible;
 mso-wrap-style:square;mso-width-percent:0;mso-height-percent:0;
 mso-wrap-distance-left:5pt;mso-wrap-distance-top:0;mso-wrap-distance-right:5pt;
 mso-wrap-distance-bottom:0;mso-position-horizontal:absolute;
 mso-position-horizontal-relative:margin;mso-position-vertical:absolute;
 mso-position-vertical-relative:text;mso-width-percent:0;mso-height-percent:0;
 mso-width-relative:page;mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image104.jpg&#34;
  o:title=&#34;image105&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Another useful trick for reducing
memory requirements is &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;hashing&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;\A1\AAa consistent pseudo-random collapsing of a large
tiling into a much smaller set of tiles. Hashing produces tiles consisting of
noncontiguous, disjoint regions randomly spread throughout the state space, but
that still form an exhaustive partition. For example, one tile might consist of
the four subtiles shown to the right. Through hashing, memory re&amp;shy;quirements are
often reduced by large factors with little loss of performance. This is
possible because high resolution is needed in only a small fraction of the
state space. Hashing&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;frees us from the curse of dimensionality in the sense that memory
requirements need not be exponential in the number of dimensions, but need
merely match the real demands of the task. Good open-source implementations of
tile coding, including hashing, are widely available.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:17.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;tab-stops:right 398.65pt;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Exercise 9.4 Suppose we believe that one of two
state dimensions is more likely to have an effect on the value function than is
the other, that generalization should be primarily across this dimension rather
than along it. What kind of tilings could be used to take advantage of this
prior knowledge?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=691 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.55pt;
margin-left:0cm;text-indent:0cm;line-height:10.5pt;mso-line-height-rule:exactly;
mso-list:l72 level1 lfo40;tab-stops:41.05pt;background:transparent&#39;&gt;&lt;a
name=bookmark154&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;9.5.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Radial Basis Functions&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;Radial basis functions (RBFs) are the natural generalization of
coarse coding to continuous-valued features. Rather than each feature being
either 0 or 1, it can be anything in the interval [&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;], reflecting various &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;degrees&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; to which the feature is present. A typical RBF
feature, i, has a Gaussian (bell-shaped) response Xi(s) dependent only on the
distance between the state, s, and the feature\A1\AFs prototypical or center state,
ci, and relative to the feature\A1\AFs width, %:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.85pt;
margin-left:28.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Xi(s) ^ exp (-&lt;/span&gt;&lt;/span&gt;&lt;span
class=433&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;l|s&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia0&gt;&lt;sub&gt;&lt;span lang=ZH-TW style=&#39;font-size:9.5pt;mso-ansi-language:
ZH-TW;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span class=433&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;^2&lt;/span&gt;&lt;/span&gt;&lt;span class=433&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\BB&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;)&amp;#8226;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.25pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;The norm or distance metric of course can be chosen in whatever way
seems most appropriate to the states and task at hand. Figure 9.13 shows a
one-dimensional&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:58.1pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=77 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=77 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:58.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_36&#34; o:spid=&#34;_x0000_i1086&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image106&#34;
   style=&#39;width:215.25pt;height:57.75pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image105.jpg&#34;
    o:title=&#34;image106&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=8b align=left style=&#39;text-align:left;line-height:9.0pt;mso-line-height-rule:
  exactly;background:transparent;mso-element:frame;mso-element-frame-height:
  58.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span class=83&gt;&lt;span lang=EN-US&gt;Figure 9.13: One-dimensional radial
  basis functions.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Courier New&#34;;
mso-fareast-font-family:&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;
mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-bottom:1.35pt;text-align:justify;text-justify:inter-ideograph;
line-height:9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;example with a Euclidean distance metric.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;The primary advantage of RBFs
over binary features is that they produce approxi&amp;shy;mate functions that vary
smoothly and are differentiable. Although this is appealing, in most cases it
has no practical significance. Nevertheless, extensive studies have been made
of graded response functions such as RBFs in the context of tile coding (An,
1991; Miller et al., 1991; An, Miller and Parks, 1991; Lane, Handelman and
Gelfand, 1992). All of these methods require substantial additional
computational complexity (over tile coding) and often reduce performance when
there are more than two state dimensions. In high dimensions the edges of tiles
are much more important, and it has proven difficult to obtain well controlled
graded tile activations near the edges.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:20.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;An &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;RBF network&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;is a linear function approximator using RBFs for its
features. Learning is defined by equations (9.6) and (9.7), exactly as in other
linear function approximators. In addition, some learning methods for RBF
networks change the centers and widths of the features as well, bringing them
into the realm of nonlinear function approximators. Nonlinear methods may be
able to fit target functions much more precisely. The downside to RBF networks,
and to nonlinear RBF networks es&amp;shy;pecially, is greater computational complexity
and, often, more manual tuning before learning is robust and efficient.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=823 align=left style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:
9.65pt;margin-left:37.0pt;text-align:left;text-indent:-37.0pt;line-height:18.0pt;
mso-line-height-rule:exactly;mso-pagination:lines-together;page-break-after:
avoid;mso-list:l25 level1 lfo39;tab-stops:36.7pt;background:transparent&#39;&gt;&lt;a
name=bookmark155&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;9.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Nonlinear Function
Approximation: Artificial Neu&amp;shy;ral Networks&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Artificial neural networks (ANNs) are widely used
for nonlinear function approxima&amp;shy;tion. An ANN is a network of interconnected
units that have some of the properties of neurons, main component of nervous
systems. ANNs have a long history, with latest advances in training
deeply-layered ANNs being responsible for some of the most impressive abilities
of machine learning systems, including reinforcement learn&amp;shy;ing systems. In
Chapter 16 we describe several stunning examples of reinforcement learning
systems that use ANN function approximation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Figure 9.14 shows a generic
feedforward ANN, meaning that there are no loops in the network, that is, there
are no paths within the network by which a unit&#39;s output can influence its
input. The network in the figure has an output layer consisting of two output
units, an input layer with four input units, and two hidden layers: layers that
are neither input nor output layers. A real-valued weight is associated with
each link. A weight roughly corresponds to the efficacy of a synaptic
connection in a real neural network (see Section 15.1). If an ANN has at least
one loop in its connections, it is a recurrent rather than a feedforward ANN.
Although both feedforward and recurrent ANNs have been used in reinforcement
learning, here we look only at the simpler feedforward case.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;The units (the circles in Figure
9.14) are typically semi-linear units, meaning that they compute a weighted sum
of their input signals and then apply to the result a nonlinear function,
called the &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;activation function&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, to produce the unit&#39;s output, or&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:31.85pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;Figure 9.14: A generic feedforward neural network with four input
units, two output units, and two hidden layers.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;activation. Many different activation functions are
used, but they are typically S- shaped, or sigmoid, functions such as the
logistic function &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;f&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt; (x) = &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1/(1&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt; + e&lt;sup&gt;-x&lt;/sup&gt;), though sometimes the rectifier nonlinearity f
(x) = max(0, x) is used. A step function like f (x) = 1 if x &amp;gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A3\AC&lt;/span&gt;&lt;span lang=EN-US&gt;and 0
otherwise, results in a binary unit with threshold 0. It is often useful for
units in different layers to use different activation functions.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;The activation of each output
unit of a feedforward ANN is a nonlinear function of the activation patterns over
the network\A1\AFs input units. The functions are param&amp;shy;eterized by the network\A1\AFs
connection weights. An ANN with no hidden layers can represent only a very
small fraction of the possible input-output functions. However an ANN with a
single hidden layer having a large enough finite number of sigmoid units can
approximate any continuous function on a compact region of the network\A1\AFs input
space to any degree of accuracy (Cybenko, 1989). This is also true for other
nonlinear activation functions that satisfy mild conditions, but nonlinearity
is essen&amp;shy;tial: if all the units in a multi-layer feedforward ANN have linear
activation functions, the entire network is equivalent to a network with no
hidden layers (because linear functions of linear functions are themselves
linear).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Despite this \A1\B0universal
approximation\A1\B1 property of one-hidden-layer ANNs, both experience and theory
show that approximating the complex functions needed for many artificial
intelligence tasks is made easier\A1\AAindeed may require\A1\AAabstractions that are
hierarchical compositions of many layers of lower-level abstractions, that is,
abstractions produced by deep architectures such as ANNs with many hidden
layers. (See Bengio, 2009, for a thorough review.) The successive layers of a
deep ANN compute increasingly abstract representations of the network\A1\AFs \A1\B0raw\A1\B1
input, with each unit providing a feature contributing to a hierarchical
representation of the overall input-output function of the network.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Creating these kinds of hierarchical representations
without relying exclusively on hand-crafted features has been an enduring
challenge for artificial intelligence. This is why learning algorithms for ANNs
with hidden layers have received so much attention over the years. ANNs
typically learn by a stochastic gradient method (Section 9.3). Each weight is
adjusted in a direction aimed at improving the network\A1\AFs overall performance as
measured by an objective function to be either minimized or maximized. In the
most common supervised learning case, the objective function is the expected
error, or loss, over a set of labeled training examples. In reinforcement
learning, ANNs can use TD errors to learn value functions, or they can aim to
maximize expected reward as in a gradient bandit (Section 2.8) or a policy-gradient
algorithm (Chapter 13). In all of these cases it is necessary to estimate how a
change in each connection weight would influence the network\A1\AFs overall
performance, in other words, to estimate the partial derivative of an objective
function with respect to each weight, given the current values of all the
network\A1\AFs weights. The gradient is the vector of these partial derivatives.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;The most successful way to do
this for ANNs with hidden layers (provided the units have differentiable
activation functions) is the backpropagation algorithm, which con&amp;shy;sists of
alternating forward and backward passes through the network. Each forward pass
computes the activation of each unit given the current activations of the net&amp;shy;work\A1\AFs
input units. After each forward pass, a backward pass efficiently computes a
partial derivative for each weight. (As in other stochastic gradient learning
algo&amp;shy;rithms, the vector of these partial derivatives is an estimate of the true
gradient.) In Section 15.10 we discuss methods for training ANNs with hidden
layers that use reinforcement learning principles instead of backpropagation.
These methods are less efficient than the backpropagation algorithm, but they
may be closer to how real neural networks learn.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;The backpropagation algorithm can
produce good results for shallow networks having 1 or 2 hidden layers, but it
does not work well for deeper ANNs. In fact, training a network with k + &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; hidden layers can actually result in poorer
performance than training a network with k hidden layers, even though the
deeper network can represent all the functions that the shallower network can
(Bengio, 2009). Explaining results like these is not easy, but several factors
are important. First, the large number of weights in a typical deep ANN makes
it difficult to avoid the problem of overfitting, that is, the problem of
failing to generalize correctly to cases on which the network has not been
trained. Second, backpropagation does not work well for deep ANNs because the
partial derivatives computed by its backward passes either decay rapidly toward
the input side of the network, making learning by deep layers extremely slow,
or the partial derivatives grow rapidly toward the input side of the network,
making learning unstable. Methods for dealing with these problems are largely
responsible for many impressive results achieved by systems that use deep ANNs.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Overfitting is a problem for any
function approximation method that adjusts func&amp;shy;tions with many degrees of
freedom on the basis of limited training data. It is less of a problem for
on-line reinforcement learning that does not rely on limited training sets, but
generalizing effectively is still an important issue. Overfitting is a problem&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection230&gt;

&lt;p class=436 style=&#39;margin-right:24.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;for ANNs in general, but especially so for deep ANNs
because they tend to have very large numbers of weights. Many methods have been
developed for reducing overfitting. These include stopping training when
performance begins to decrease on validation data different from the training
data (cross validation), modifying the objective function to discourage
complexity of the approximation (regularization), and introducing dependencies
among the weights to reduce the number of degrees of freedom (e.g., weight
sharing).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:24.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;A particularly effective method
for reducing overfitting by deep ANNs is the dropout method introduced by
Srivastava, Hinton, Krizhevsky, Sutskever, and Salakhut- dinov (2014). During
training, units are randomly removed from the network (dropped out) along with
their connections. This can be thought of as training a large number of
\A1\B0thinned\A1\B1 networks. Combining the results of these thinned networks at test
time is a way to improve generalization performance. The dropout method
efficiently ap&amp;shy;proximates this combination by multiplying each outgoing weight
of a unit by the probability that that unit was retained during training.
Srivastava et al. found that this method significantly improves generalization
performance. It encourages indi&amp;shy;vidual hidden units to learn features that work
well with random collections of other features. This increases the versatility
of the features formed by the hidden units so that the network does not overly
specialize to rarely-occurring cases.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:24.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Hinton, Osindero, and Teh (2006)
took a major step toward solving the problem of training the deep layers of a
deep ANN in their work with deep belief networks, layered networks closely
related to the deep ANNs discussed here. In their method, the deepest layers
are trained one at a time using an unsupervised learning algorithm. Without
relying on the overall objective function, unsupervised learning can extract
features that capture statistical regularities of the input stream. The deepest
layer is trained first, then with input provided by this trained layer, the
next deepest layer is trained, and so on, until the weights in all, or many, of
the network&#39;s layers are set to values that now act as initial values for
supervised learning. The network is then fine-tuned by backpropagation with
respect to the overall objective function. Studies show that this approach
generally works much better than backpropagation with weights initialized with
random values. The better performance of networks trained with weights
initialized this way could be due to many factors, but one idea is that this
method places the network in a region of weight space from which a
gradient-based algorithm can make good progress.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:24.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;A type of deep ANN that has
proven to be very successful in applications, includ&amp;shy;ing impressive
reinforcement learning applications (Chapter 16) is the &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;deep
convolu&amp;shy;tional network&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;. This
type of network is specialized for processing high-dimensional data arranged in
spatial arrays, such as images. It was inspired by how early visual processing
works in the brain (LeCun, Bottou, Bengio and Haffner, 1998). Because of its
special architecture, a deep convolutional network can be trained by backprop-
agation without resorting to methods like those described above to train the
deep layers.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:24.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Figure 9.15 illustrates the
architecture of a deep convolutional network. This in&amp;shy;stance, from LeCun et al.
(1998), was designed to recognize hand-written characters.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:96.25pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=128 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=128 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=303 style=&#39;line-height:6.0pt;mso-line-height-rule:exactly;
  background:transparent;mso-element:frame;mso-element-frame-height:96.25pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span lang=EN-US&gt;C3: f. maps 16@ 10x10&lt;/span&gt;&lt;/p&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:96.25pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_37&#34; o:spid=&#34;_x0000_i1085&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image107&#34;
   style=&#39;width:410.25pt;height:96.75pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image106.jpg&#34;
    o:title=&#34;image107&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=2fb style=&#39;text-align:justify;text-justify:inter-ideograph;
  line-height:7.0pt;mso-line-height-rule:exactly;tab-stops:74.65pt;background:
  transparent;mso-element:frame;mso-element-frame-height:96.25pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;&lt;span class=2e&gt;&lt;span
  lang=EN-US&gt;Convolutions&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Subsampling
  Convolutions Subsampling Full connection&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=8b style=&#39;background:transparent;mso-element:frame;mso-element-frame-height:
  96.25pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span class=83&gt;&lt;span lang=EN-US&gt;Figure 9.15: Deep Convolutional
  Network. Republished with permission of Proceedings of the IEEE, from
  Gradient-based learning applied to document recognition, LeCun, Bottou,
  Bengio, and Haffner, volume &lt;/span&gt;&lt;/span&gt;&lt;span class=8Georgia0&gt;&lt;span
  lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;86&lt;/span&gt;&lt;/span&gt;&lt;span
  class=83&gt;&lt;span lang=EN-US&gt;, 1998; permission conveyed through Copyright
  Clearance Center, Inc.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:27.15pt;margin-right:16.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;It consists of alternating convolutional and
subsampling layers, followed by several fully connected final layers. Each
convolutional layer produces a number of feature maps. A feature map is a
pattern of activity over an array of units, where each unit performs the same
operation on data in its receptive field, which is the part of the data it
\A1\B0sees\A1\B1 from the preceding layer (or from the external input in the case of the
first convolutional layer). The units of a feature map are identical to one
another except that their receptive fields, which are all the same size and
shape, are shifted to different locations on the arrays of incoming data. Units
in the same feature map share the same weights. This means that a feature map
detects the same feature no matter where it is located in the input array. In
the network in Figure 9.15, for example, the first convolutional layer produces
&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;
font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt; feature
maps, each consisting of 28 x 28 units. Each unit in each feature map has a 5 x
5 receptive field, and these receptive fields overlap (in this case by four
columns and five rows). Consequently, each of the &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; feature maps is specified by just 25 adjustable
weights.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;The subsampling layers of a deep
convolutional network reduce the spatial res&amp;shy;olution of the feature maps. Each
feature map in a subsampling layer consists of units that average over a
receptive field of units in the feature maps of the preceding convolutional
layer. For example, each unit in each of the &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; feature maps in the first subsampling layer of the
network of Figure 9.15 averages over a 2 x 2 non-overlapping receptive fields
of a feature map produced by the first convolutional layer, resulting in six 14
x 14 feature maps. The subsampling layers reduce the network\A1\AFs sensitivity to
the spatial locations of the features detected, that is, they help make the
network\A1\AFs responses spatially invariant. This is useful because a feature
detected at one place in an image is likely to be useful at other places as
well.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Advances in the design and
training of ANNs\A1\AAof which we have only mentioned a few\A1\AAall contribute to
reinforcement learning. Although current reinforcement learning theory is
mostly limited to methods using tabular or linear function approx&amp;shy;imation
methods, the impressive performances of notable reinforcement learning ap&amp;shy;plications
owe much of their success to nonlinear function approximation by ANNs,&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;in particular, by deep ANNs. The case studies we discuss in Chapter
16 that use ANNs all use deep convolutional networks, which are well suited for
the spatial arrays that represent states in these problems. Other network
architectures are appropriate for other types of problems, and one of the
challenges of using ANNs for function approximation is finding a network
architecture that works well for the problem of interest.&lt;/span&gt;&lt;/p&gt;

&lt;p class=823 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.8pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l25 level1 lfo39;
tab-stops:37.7pt;background:transparent&#39;&gt;&lt;a name=bookmark156&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;9.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Least-Squares TD&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In Section 9.4 we established that TD(0) with linear function
approximation con&amp;shy;verges asymptotically, for appropriately decreasing step
sizes, to the TD fixedpoint:&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
13.2pt;margin-left:28.0pt;text-align:left;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=517&gt;&lt;span lang=EN-US&gt;wtd &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span
class=516&gt;&lt;span lang=EN-US&gt;A &lt;sup&gt;i&lt;/sup&gt;b,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:16.3pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.25pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
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&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:5.25pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Why, we might ask, must we compute this solution iteratively? This
is wasteful of data! Could one not do better by computing estimates of &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;b&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, and
then directly computing the TD fixedpoint? The Least-Squares TD algorithm,
commonly known as LSTD, does exactly this. It forms the natural estimates&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:28.0pt;margin-bottom:.0001pt;text-indent:31.0pt;line-height:14.4pt;
mso-line-height-rule:exactly;tab-stops:right 401.7pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;tt &lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t =&lt;/span&gt;&lt;span class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\B7\A6\A1\B3&lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;x&lt;/span&gt;&lt;/span&gt;&lt;sub&gt;&lt;span lang=EN-US&gt;fc&lt;/span&gt;&lt;/sub&gt;&lt;span
lang=EN-US&gt; (&lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;x&lt;/span&gt;&lt;/span&gt;&lt;sub&gt;&lt;span
lang=EN-US&gt;fc&lt;/span&gt;&lt;/sub&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Y&lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;fc+i)&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+ e&lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;l &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;b&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t =&lt;/span&gt;&lt;span
class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\B7\A6\A1\B3&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Rt+i&lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;x&lt;/span&gt;&lt;/span&gt;&lt;sub&gt;&lt;span
lang=EN-US&gt;fc&lt;/span&gt;&lt;/sub&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(9.18)&lt;/span&gt;&lt;/p&gt;

&lt;p class=153 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.75pt;
margin-left:58.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
9.5pt;mso-line-height-rule:exactly;tab-stops:247.85pt;background:transparent&#39;&gt;&lt;span
class=1595pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
class=151&gt;&lt;span lang=EN-US&gt;=0&lt;/span&gt;&lt;/span&gt;&lt;span class=1595pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
class=151&gt;&lt;span lang=EN-US&gt;=0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;(where e&lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;I&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, for some small e &amp;gt; &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, ensures that &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t is
always invertible) and then estimates the TD fixedpoint as&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.5pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
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  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;wt+i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;==Ap bt.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(9.19)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;This algorithm is the most data efficient form of
linear TD(0), but it is also much more expensive computationally. Recall that
semi-gradient TD(0) requires memory and per-step computation that is only O(d).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;How complex is LSTD? As it is written above the
complexity seems to increase with t, but the two approximations in (9.18) could
be implemented incrementally using the techniques we have covered earlier
(e.g., in Chapter 2) so that they can be done in constant time per step. Even
so, the update for At would involve an outer product (a column vector times a
row vector) and thus would be a matrix update; its computational complexity
would be O(d&lt;sup&gt;2&lt;/sup&gt;), and of course the memory required to hold the At
matrix would be O(d&lt;sup&gt;2&lt;/sup&gt;).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;A potentially greater problem is that our final computation (9.19)
uses the inverse of At, and the computational complexity of a general inverse
computation is O(d&lt;sup&gt;3&lt;/sup&gt;). Fortunately, an inverse of a matrix of our
special form\A1\AAa sum of outer products\A1\AAcan&lt;br clear=all style=&#39;page-break-before:
always&#39;&gt;
also be updated incrementally with only O(d&lt;sup&gt;2&lt;/sup&gt;) computations, as&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.65pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
20.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 393.7pt;
background:transparent&#39;&gt;&lt;span class=afff7&gt;&lt;span lang=EN-US&gt;A;&lt;sup&gt;1&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; = (A_t-i + xt(xt - &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;xt+i)&lt;sup&gt;T&lt;/sup&gt;)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(from
(9.18))&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:45.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 393.7pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=A&lt;sup&gt;-&lt;/sup&gt;_i&lt;sub&gt;i&lt;/sub&gt;
-&lt;/span&gt;&lt;span class=MingLiUff8&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:
ZH-TW&#39;&gt;\D3\D6&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;--&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;i&lt;sup&gt;xt(xt
- Yxt&lt;/sup&gt;+&lt;sup&gt;i&lt;/sup&gt;)&lt;sup&gt;TX--&lt;/sup&gt;i,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(9.20)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:14.65pt;
margin-left:105.0pt;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + (xt - 7xt+i)&lt;sup&gt;T&lt;/sup&gt;^V&lt;sub&gt;t-i&lt;/sub&gt;xt&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:18.55pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.9pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;with &lt;span class=afff7&gt;A&lt;/span&gt;_i == ^I. Although the identity
(9.20), known as &lt;span class=afff7&gt;the Sherman-Morrison formula&lt;/span&gt;, is
superficially complicated, it involves only vector-matrix and vector-vector
multiplications and thus is only O(d&lt;sup&gt;2&lt;/sup&gt;). Thus we can store and
maintain the inverse matrix A&lt;sup&gt;-i&lt;/sup&gt;t, and then use it in (9.19), all
with only O(d&lt;sup&gt;2&lt;/sup&gt;) memory and per-step computation. The complete
algorithm is given in the box below.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.1pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
20.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span
class=af7&gt;&lt;span lang=EN-US&gt;LSTD for estimating V c Vn (O(d&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt9&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=af7&gt;&lt;span lang=EN-US&gt;) version)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:11.25pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
20.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Input: feature representation x(&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) G R&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;d&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;V&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;G S&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;x(terminal) == 0&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:20.0pt;line-height:13.7pt;mso-line-height-rule:exactly;tab-stops:
right 295.8pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;i&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;i&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;I&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;An
&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;d &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;x &lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;d &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;matrix&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:20.0pt;line-height:13.7pt;mso-line-height-rule:exactly;tab-stops:
right 295.8pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;b \A1\AA 0&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;An
&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;d&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;-dimensional vector&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:20.0pt;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat (for each episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:207.0pt;margin-bottom:0cm;
margin-left:21.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.7pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;; obtain corresponding x Repeat (for each step of episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:45.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Choose &lt;span class=afff7&gt;A&lt;/span&gt; &lt;/span&gt;&lt;span
class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(-|&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:45.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Take action &lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, observe &lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;R, S&lt;/span&gt;&lt;/span&gt;&lt;span class=afff7&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;f&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;
obtain corresponding &lt;span class=afff7&gt;x&lt;sup&gt;f&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:89.0pt;margin-bottom:.0001pt;text-align:left;line-height:8.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=21b&gt;&lt;span
lang=EN-US&gt;T&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:45.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:15.1pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;v \A1\AA A&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;i&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; (x \A1\AA &lt;/span&gt;&lt;span
class=CenturySchoolbookf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;y&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;x&lt;sup&gt;;&lt;/sup&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:179.0pt;margin-bottom:0cm;
margin-left:45.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:15.1pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;i&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; \A1\AA A&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;i&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; \A1\AA (A&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;i&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;x)v&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;/ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(1 + v&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;x) &lt;sup&gt;b&lt;/sup&gt; \A1\AA
&lt;sup&gt;b&lt;/sup&gt; + &lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;x&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:45.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afff7&gt;&lt;span lang=EN-US&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; \A1\AA a&lt;sup&gt;-&lt;/sup&gt;&lt;/span&gt;&lt;span class=9pt8&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; b&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-top:0cm;margin-right:282.0pt;
margin-bottom:24.2pt;margin-left:21.0pt;text-align:right;text-indent:0cm;
line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;S &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;; x \A1\AA &lt;span
class=afff7&gt;x! &lt;/span&gt;until &lt;span class=afff7&gt;S&lt;sup&gt;f&lt;/sup&gt;&lt;/span&gt; is terminal&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:20.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Of course, O(d&lt;sup&gt;2&lt;/sup&gt;) is still
significantly more expensive than the O(d) of semi-gradient TD. Whether the
greater data efficiency of LSTD is worth this computational expense depends on
how large d is, how important it is to learn quickly, and the expense of other
parts of the system. The fact that LSTD requires no step-size parameter is
sometimes also touted, but the advantage of this is probably overstated. LSTD
does not require a step size, but it does requires &lt;span class=afff7&gt;e\&lt;/span&gt;
if &lt;span class=afff7&gt;e&lt;/span&gt; is chosen too small the sequence of inverses can
vary wildly, and if e is chosen too large then learning is slowed. In addition,
LSTD&#39;s lack of a step size parameter means that it never forgets. This is
sometimes desirable, but it is problematic if the target policy n changes as it
does in reinforcement learning and GPI. In control applications, LSTD typically
has to be combined with some other mechanism to induce forgeting, mooting any
initial advantage of not requiring a step size parameter.&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection231&gt;

&lt;p class=823 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l25 level1 lfo39;
tab-stops:36.7pt;background:transparent&#39;&gt;&lt;a name=bookmark157&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;9.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Memory-based Function
Approximation&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:17.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;So far we have discussed the &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;parametric&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; approach to approximating value functions. In this
approach, a learning algorithm adjusts the parameters of a functional form
intended to approximate the value function over a problem\A1\AFs entire state space.
Each backup, s ^ g, is a training example used by the learning algorithm to
change the parameters with the aim of reducing the approximation error. After
the update, the training example can be discarded (although it might be saved
to be used again). When an approximate value of a state (which we will call the
&lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
font-weight:normal&#39;&gt;query state)&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;
is needed, the function is simply evaluated at that state using the latest
parameters produced by the learning algorithm.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:17.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Memory-based function
approximation methods are very different. They simply save training examples in
memory as they arrive (or at least save a subset of the examples) without
updating any parameters. Then, whenever a query state\A1\AFs value estimate is needed,
a set of examples is retrieved from memory and used to compute a value estimate
for the query state. This approach is sometimes called &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;lazy
learning &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;because processing
training examples is postponed until the system is queried to provide an
output.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:17.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Memory-based function
approximation methods are prime examples of &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;nonpara- metric&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; methods. Unlike parametric methods, the
approximating function\A1\AFs form is not limited to a fixed parameterized class of
functions, such as linear functions or polynomials, but is instead determined
by the training examples themselves, together with some means for combining
them to output estimated values for query states. As more training examples
accumulate in memory, one expects nonparametric methods to produce increasingly
accurate approximations of any target function.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:17.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;There are many different
memory-based methods depending on how the stored training examples are selected
and how they are used to respond to a query. Here, we focus on &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;local-learning&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; methods that approximate a value function only
locally in the neighborhood of the current query state. These methods retrieve
a set of training examples from memory whose states are judged to be the most
relevant to the query state, where relevance usually depends on the distance
between states: the closer a training example\A1\AFs state is to the query state,
the more relevant it is considered to be, where distance can be defined in many
different ways. After the query state is given a value, the local approximation
is discarded.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:17.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;The simplest example of the
memory-based approach is the &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;nearest neighbor&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; method, which simply finds the example in memory
whose state is closest to the query state and returns that example\A1\AFs value as
the approximate value of the query state. In other words, if the query state is
s, and &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
font-weight:normal&#39;&gt;s&lt;sup&gt;f&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt; ^ &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;g&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt; is the example in memory in which s&lt;sup&gt;;&lt;/sup&gt; is the closest
state to s, then g is returned as the approximate value of s. Slightly more
complicated are &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;weighted average&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; methods that retrieve a set of nearest neigh&amp;shy;bor
examples and return a weighted average of their target values, where the
weights generally decrease with increasing distance between their states and
the query state. &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;Locally weighted regression&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; is similar, but it fits a surface to the values of
a set of nearest states by means of a parametric approximation method that
minimizes a&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;weighted error measure like (9.1), where the weights
depend on distances from the query state. The value returned is the evaluation
of the locally-fitted surface at the query state, after which the local
approximation surface is discarded.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Being nonparametric, memory-based
methods have the advantage over paramet&amp;shy;ric methods of not limiting
approximations to pre-specified functional forms. This allows accuracy to
improve as more data accumulates. Memory-based &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;local&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;approxi&amp;shy;mation methods have other properties that
make them well suited for reinforcement learning. Because trajectory sampling
is of such importance in reinforcement learn&amp;shy;ing, as discussed in Section &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, memory-based local methods can focus function
approximation on local neighborhoods of states (or state-action pairs) visited
in real or simulated trajectories. There may be no need for global
approximations because many areas of the state space will never (or almost
never) be reached. In addition, memory-based methods allow an agent\A1\AFs
experience to have a relatively immediate affect on value estimates in the
neighborhood if its environment\A1\AFs current state, in contrast with a parametric
method\A1\AFs need to incrementally adjust parameters of a global approximation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Avoiding global approximations is
also a way to address the curse of dimensionality. For example, for a state
space with d dimensions, a tabular method storing a global approximation
requires memory exponential in d. On the other hand, in storing examples for a
memory-based method, each example requires memory proportional to d, and the
memory required to store, say, n examples is linear in n. Nothing is
exponential in d or n. Of course, the critical remaining issue is whether a
memory- based method can answer queries quickly enough to be useful to an
agent. A related concern is how speed degrades as the size of the memory grows.
Finding nearest neighbors in a large database can take too long to be practical
in many applications.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Proponents of memory-based
methods have developed ways to accelerate the near&amp;shy;est neighbor search. Using
parallel computers or special purpose hardware is one approach; another is the
use of special multi-dimensional data structures to store the training data. One
data structure studied for this application is the k-d tree (short for
k-dimensional tree), which recursively splits a k-dimensional space into
regions arranged as nodes of a binary tree. Depending on the amount of data and
how it is distributed over the state space, nearest-neighbor search using k-d
trees can quickly eliminate large regions of the space in the search for
neighbors, making the searches feasible in some problems where naive searches
would take too long.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Locally weighted regression
additionally requires fast ways to do the local regres&amp;shy;sion computations which
have to be repeated to answer each query. Researchers have developed many ways
to address these problems, including methods for forgetting en&amp;shy;tries in order
to keep the size of the database within bounds. The Bibliographic and
Historical Comments section at the end of this chapter points to some of the
relevant literature, including a selection of papers describing applications of
memory-based learning to reinforcement learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=823 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l25 level1 lfo39;
tab-stops:36.0pt;background:transparent&#39;&gt;&lt;a name=bookmark158&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;9.9&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Kernel-based Function
Approximation&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;Memory-baed methods such as the weighted average and locally
weighted regression methods described above depend on assigning weights to
examples &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt;font-weight:normal&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;f&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; ^ g in the database depending on the distance
between &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt;font-weight:normal&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;f&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; and a query states s. The function that assigns
these weights is called a &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;kernel function&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, or simply a &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;kernel&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;. In the weighted average and locally weighted
regressions methods, for example, a kernel function &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;: R R assigns weights to distances between states.
More generally, weights do not have to depend on distances; they can depend on
some other measure of similarity between states. In this case, k : S x S R, so
that k(s, s&lt;sup&gt;;&lt;/sup&gt;) is the weight given to data about &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;f&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; in its influence on answering queries about s.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Viewed slightly differently, k(s, s&lt;sup&gt;;&lt;/sup&gt;) is
a measure of the strength of generalization from &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
class=43MingLiU0&gt;&lt;span style=&#39;font-size:4.5pt;font-weight:normal&#39;&gt;ح&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;to s.
Kernel functions numerically express how &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;relevant&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;knowledge about any state is to any other state. As
an example, the strengths of generalization for tile coding shown in Figure
9.11 correspond to different kernel functions resulting from uniform and
asymmetrical tile offsets. Although tile coding does not explicitly use a
kernel function in its operation, it generalizes according to one. In fact, as
we discuss more below, the strength of generalization resulting from linear
parametric function approximation can always be described by a kernel function.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-bottom:2.95pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=43Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;
font-weight:normal&#39;&gt;Kernel regression&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;is the memory-based method that computes a kernel
weighted average of the targets of &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;all&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;examples stored in memory, assigning the result to
the query state. If &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;D&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;is the set of stored examples, and g(s&lt;sup&gt;;&lt;/sup&gt;)
denotes the target for state s&lt;sup&gt;;&lt;/sup&gt; in a stored example, then kernel
regression approximates the target function, in this case a value function depending
on D, as&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:17.7pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
21.0pt;mso-line-height-rule:exactly;tab-stops:right 401.45pt;background:transparent&#39;&gt;&lt;span
class=43MingLiU&gt;&lt;span style=&#39;font-size:5.5pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;\D0\C4&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;(s,D)= &lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook0&gt;&lt;span lang=EN-US style=&#39;font-size:21.0pt;font-weight:
normal&#39;&gt;E &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;k(s, s&lt;sup&gt;;&lt;/sup&gt;)g(s&lt;sup&gt;;&lt;/sup&gt;).&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(9.21)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;The weighted average method described above is a special case in
which k(s, s&lt;sup&gt;;&lt;/sup&gt;) is non-zero only when s and s&lt;sup&gt;;&lt;/sup&gt; are close
to one another so that the sum need not be computed over all of D.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;A common kernel is the Gaussian radial basis
function (RBF) used in RBF function approximation as described in Section
9.5.5. In the method described there, RBFs are features whose centers and
widths are either fixed from the start, with centers presumably concentrated in
areas where many examples are expected to fall, or are adjusted in some way
during learning. Barring methods that adjust centers and widths, this is a
linear parametric method whose parameters are the weights of each RBF, which
are typically learned by stochastic gradient, or semi-gradient, descent. The
form of the approximation is a linear combination of the pre-determined RBFs.
Kernel regression with an RBF kernel differs from this in two ways. First, it
is memory-based: the RBFs are centered on the states of the stored examples.
Second, it is nonparametric: there are no parameters to learn; the response to
a query is given by (9.21).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-bottom:12.15pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Of course, many issues have to be
addressed for practical implementation of ker&amp;shy;nel regression, issues that are
beyond the scope or our brief discussion. However, it turns out that any linear
parametric regression method like those we described in Sec&amp;shy;tion 9.4, with
states represented by feature vectors &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;(s) = (xi(s), x&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;(s),..., x&lt;sub&gt;n&lt;/sub&gt;(s))&lt;sup&gt;T&lt;/sup&gt;, can be recast as kernel
regression where k(s, s&#39;) is the inner product of the feature vector
representations of s and s&#39;; that is&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.05pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
9.5pt;mso-line-height-rule:exactly;tab-stops:right 402.4pt;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;k(s, s&#39;) = &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;(s)&lt;sup&gt;T&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;(s&#39;).&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(9.22)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Kernel regression with this kernel function produces
the same approximation that a linear parametric method would if it used these
feature vectors and learned with the same training data.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;We skip the mathematical
justification for this, which can be found in any modern machine learning text,
such as Bishop (2006), and simply point out an important implication. Instead
of constructing features for linear parametric function approx&amp;shy;imators, one can
instead construct kernel functions directly without referring at all to feature
vectors. Not all kernel functions can be expressed as inner products of feature
vectors as in (9.22), but a kernel function that can be expressed like this can
offer significant advantages over the equivalent parametric method. For many
sets of feature vectors, (9.22) has a compact functional form that can be
evaluated without any computation taking place in the n-dimensional feature
space. In these cases, kernel regression is much less complex than directly
using a linear parametric method with states represented by these feature
vectors. This is the so-called \A1\B0kernel trick\A1\B1 that allows effectively working
in the high-dimension of an expansive feature space while actually working only
with the set of stored training examples. The ker&amp;shy;nel trick is the basis of
many machine learning methods, and researchers have shown how it can sometimes
benefit reinforcement learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:17.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;The Bibliographic and Historical Comments section at
the end of this chapter refers to a selection of publications on some of the
mathematical details and on some of the kernel-based reinforcement learning
methods that have been proposed.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=823 align=left style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:
12.65pt;margin-left:46.0pt;text-align:left;text-indent:-45.0pt;line-height:
18.0pt;mso-line-height-rule:exactly;mso-pagination:lines-together;page-break-after:
avoid;mso-list:l25 level1 lfo39;tab-stops:45.9pt;background:transparent&#39;&gt;&lt;a
name=bookmark159&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;9.10&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Looking Deeper at On-policy
Learning: Interest and Emphasis&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;The algorithms we have considered so far in this
chapter have treated all the states encountered equally, as if they were all
equally important. In some cases, however, we are more interested in some
states than others. In discounted episodic problems, for example, we may be
more interested in accurately valuing early states in the episode than in later
states where discounting may have made the rewards much less important to the
value of the start state. Or, if an action-value function is being learned, it
may be less important to accurately value poor actions whose value is much less
than the greedy action. Function approximation resources are always limited,
and if they were used in a more targeted way, then performance could be
improved.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;One reason we have treated all
states encountered equally is that then we are updating according to the
on-policy distribution, for which stronger theoretical re&amp;shy;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection232&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=ac&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;sults are
available for semi-gradient methods. Recall that the on-policy distribution was
defined as the distribution of states encountered in an MDP while following the
target policy. Now we will generalize this concept significantly. Rather than
having one on-policy distribution for the MDP, we will have many. All of them will
have in common that they are a distribution of states encountered in
trajectories while following the target policy, but they will vary in how the
trajectories are, in a sense, initiated.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.55pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;We now introduce some new concepts. First be introduce a non-negative
scalar measure, a random variable I&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;called &lt;span
class=afff7&gt;interest,&lt;/span&gt; indicating the degree to which we are interested
in accurately valuing the state (or state-action pair) at time t. If we don\A1\AFt
care at all about the state, then the interest should be zero; if we fully
care, it might be one, though it\A1\AFs formally allowed take any non-negative
value. The interest can be set in any causal way; for example, it may depend on
the trajectory up to time &lt;span class=afff7&gt;t&lt;/span&gt; or the learned parameters
at time t. The distribution ^ in the MSVE (9.1) is then defined as the
distribution of states encountered while following the target policy, weighted
by the interest. Second, we introduce another non-negative scalar random
variable, the &lt;span class=afff7&gt;emphasis&lt;/span&gt; M&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. This scalar multiplies the learning update and thus emphasizes or
de-emphasizes the learning done at time t. The general n-step learning rule,
replacing (9.14), is&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:right 398.6pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= w&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n-&lt;/span&gt;&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+aM&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;[G&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUff7&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n - &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;v(S&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,w&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;sub&gt;&lt;span lang=EN-US&gt;+&lt;/span&gt;&lt;/sub&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sub&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;ra&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;i)] W(S&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;,w&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;sub&gt;&lt;span
lang=EN-US&gt;+&lt;/span&gt;&lt;/sub&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sub&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;ra&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;i),&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;0
&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&amp;lt;
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t &amp;lt; T, (9.23)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;with the n-step return given by (9.15) and the emphasis determined
recursively from the interest by:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.05pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 398.6pt 400.0pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;M&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;= I&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+ Y&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;n&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;M&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t-n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;&amp;lt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&amp;lt;T,&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;(9.24)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.55pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;with M&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;== 0, &lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t &amp;lt; 0. These equations are taken to include the Monte Carlo case,
for which G&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUff7&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= G&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, all the updates are taken at episode\A1\AFs end, n = T &lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t, and M&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= I&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=823 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l25 level1 lfo39;
tab-stops:46.1pt;background:transparent&#39;&gt;&lt;a name=bookmark160&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;9.11&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Summary&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Reinforcement learning systems must be capable of
&lt;span class=afff7&gt;generalization&lt;/span&gt; if they are to be applicable to
artificial intelligence or to large engineering applications. To achieve this,
any of a broad range of existing methods for &lt;span class=afff7&gt;supervised-learning
function ap&amp;shy;proximation&lt;/span&gt; can be used simply by treating each backup as a
training example.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Perhaps the most suitable supervised learning
methods are those using &lt;span class=afff7&gt;parameter&amp;shy;ized function approximation&lt;/span&gt;,
in which the policy is parameterized by a weight vector w. Although the weight
vector has many components, the state space is much larger still and we must
settle for an approximate solution. We defined MSVE(w) as a measure of the
error in the values (s) for a weight vector w under the &lt;span class=afff7&gt;on-policy
distribution,&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;
mso-ansi-language:ZH-TW&#39;&gt;\B2\B7&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span
lang=EN-US&gt;The MSVE gives us a clear way to rank different value-function
approximations in the on-policy case.&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:38.15pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=51 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=51 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
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   id=&#34;Picture_x0020_38&#34; o:spid=&#34;_x0000_i1084&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image108&#34;
   style=&#39;width:282pt;height:38.25pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image107.jpg&#34;
    o:title=&#34;image108&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=afffff8 style=&#39;line-height:9.5pt;mso-line-height-rule:exactly;
  tab-stops:67.45pt 133.2pt right 212.65pt;background:transparent;mso-element:
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  mso-element-left:center;mso-element-top:.05pt&#39;&gt;&lt;span class=afff9&gt;&lt;span
  lang=EN-US&gt;v&lt;sub&gt;n&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = 4&lt;span
  style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;span
  class=afff9&gt;v&lt;sub&gt;n&lt;/sub&gt; =&lt;/span&gt; 3&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;span
  class=afff9&gt;v &lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUff9&gt;&lt;span style=&#39;font-size:
  8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\C8\DF&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;=2&lt;span
  style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;span
  class=afff9&gt;v&lt;sub&gt;n&lt;/sub&gt; =&lt;/span&gt; 1&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:15.15pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;v:shape id=&#34;Text_x0020_Box_x0020_427&#34; o:spid=&#34;_x0000_s1352&#34;
 type=&#34;#_x0000_t202&#34; style=&#39;position:absolute;left:0;text-align:left;
 margin-left:27.5pt;margin-top:48.4pt;width:169.05pt;height:9pt;z-index:251839274;
 visibility:visible;mso-wrap-style:square;mso-width-percent:0;
 mso-height-percent:0;mso-wrap-distance-left:5pt;mso-wrap-distance-top:0;
 mso-wrap-distance-right:5pt;mso-wrap-distance-bottom:0;
 mso-position-horizontal:absolute;mso-position-horizontal-relative:margin;
 mso-position-vertical:absolute;mso-position-vertical-relative:margin;
 mso-width-percent:0;mso-height-percent:0;mso-width-relative:page;
 mso-height-relative:page;v-text-anchor:top&#39; o:gfxdata=&#34;UEsDBBQABgAIAAAAIQC2gziS/gAAAOEBAAATAAAAW0NvbnRlbnRfVHlwZXNdLnhtbJSRQU7DMBBF
90jcwfIWJU67QAgl6YK0S0CoHGBkTxKLZGx5TGhvj5O2G0SRWNoz/78nu9wcxkFMGNg6quQqL6RA
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    transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;
    letter-spacing:0pt&#39;&gt;To see the potential benefits of using interest and
    emphasis, consider the four- state Markov reward process shown below:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;Episodes start in the leftmost state, then
transition one state to the right, with a reward of +1, on each step until the
terminal state is reached. The true value of the first state is thus 4, of the
second state 3, and so on as shown below each state. These are the true values;
the estimated values can only approximate these because they are constrained by
the parameterization. There are two components to the parameter vector &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= (wi,
W&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, and the
parameterization is as written inside each state. The estimated values of the
first two states are given by wi alone and thus must be the same even though
their true values are different. Similarly, the estimated values of the third
and fourth states are given by W&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; alone and must be the
same even though their true values are different. Suppose that we are
interested in accurately valuing only the leftmost state; we assign it an
interest of &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; while all the other states are assigned an interest of &lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, as indicated above the states.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;First consider applying gradient Monte Carlo
algorithms to this problem. The algorithms presented earlier in this chapter
that do not take into account interest and emphasis (in (9.6) and the box on
page 216) will converge (for decreasing step sizes) to the parameter vector &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;= (3.5,1.5), which gives the first state\A1\AAthe only one we are
interested in\A1\AAa value of 3.5 (i.e., intermediate between the true values of the
first and second states). The methods presented in this section that do use
interest and emphasis, on the other hand, will learn the value of the first
state exactly correctly; wi will converge to 4 while w&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; will never
be updated because the emphasis is zero in all states save the leftmost.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Now consider applying two-step semi-gradient TD
methods. The methods from earlier in this chapter without interest and emphasis
(in (9.14) and (9.15) and the box on page 223) will again converge to &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;= (3.5,1.5), while the methods with interest and emphasis converge
to &lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;= (4, 2). The latter pro&amp;shy;duces the exactly correct values for the
first state and for the third state (which the first state bootstraps from)
while never making any updates corresponding to the second or fourth states.&lt;br
clear=all style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;To find a good weight vector, the
most popular methods are variations of &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;stochas&amp;shy;tic gradient
descent&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;(SGD).
In this chapter we have focused on the &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;on-policy&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;case with a &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;fixed policy,&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;also known as policy evaluation or prediction; a
natural learn&amp;shy;ing algorithm for this case is &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;n-step
semi-gradient TD,&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;which includes gradient MC and semi-gradient TD(0) algorithms as the
special cases when n = oo and n = 1 respectively. Semi-gradient TD methods are
not true gradient methods. In such bootstrapping methods (including DP), the
weight vector appears in the update tar&amp;shy;get, yet this is not taken into account
in computing the gradient&lt;/span&gt;&lt;/span&gt;&lt;span class=43MingLiU&gt;&lt;span
style=&#39;font-size:5.5pt;mso-ansi-language:ZH-TW;font-weight:normal&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;thus they are &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;semi&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;-gradient methods. As such, they cannot rely on
classical SGD results.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Nevertheless, good results can be
obtained for semi-gradient methods in the special case of &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;linear&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;function approximation, in which the value estimates
are sums of features times corresponding weights. The linear case is the most
well understood theoretically and works well in practice when provided with
appropriate features. Choosing the features is one of the most important ways
of adding prior domain knowledge to reinforcement learning systems. They can be
chosen as polynomials, but this case generalizes poorly in the online learning
setting typically considered in reinforcement learning. Better is to choose
features according the Fourier basis, or according to some form of coarse
coding with sparse overlapping receptive fields. Tile coding is a form of
coarse coding that is particularly computationally efficient and flexible.
Radial basis functions are useful for one- or two-dimensional tasks in which a
smoothly varying response is important. LSTD is the most data-efficient linear
TD prediction method, but requires computation proportional to the square of
the number of weights, whereas all the other methods are of complexity linear
in the number of weights. Nonlinear methods include artificial neural networks
trained by backpropagation and variations of SGD; these methods have become
very popular in recent years under the name &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;deep reinforcement
learning&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Linear semi-gradient n-step TD is guaranteed to
converge under standard condi&amp;shy;tions, for all n, to a MSVE that is within a
bound of the optimal error. This bound is always tighter for higher n and
approaches zero as n o. However, in practice that choice results in very slow
learning, and some degree of bootstrapping &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; &amp;lt; n &amp;lt; co) is usually preferrable.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=823 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:37.0pt;text-indent:-36.0pt;line-height:13.0pt;mso-line-height-rule:
exactly;mso-pagination:lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark161&gt;&lt;span lang=EN-US&gt;Bibliographical and Historical Remarks&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;Generalization and function approximation have always been an
integral part of rein&amp;shy;forcement learning. Bertsekas and Tsitsiklis (1996),
Bertsekas (2012), and Sugiyama et al. (2013) present the state of the art in
function approximation in reinforce&amp;shy;ment learning. Some of the early work with
function approximation in reinforcement learning is discussed at the end of
this section.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:37.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l13 level1 lfo41;
tab-stops:37.25pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;9.3&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Gradient-descent methods for minimizing mean-squared
error in supervised learning are well known. Widrow and Hoff (1960) introduced
the least-mean- square (LMS) algorithm, which is the prototypical incremental
gradient- descent algorithm. Details of this and related algorithms are
provided in many texts (e.g., Widrow and Stearns, 1985; Bishop, 1995; Duda and
Hart, 1973).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;Semi-gradient TD(0) was first explored by Sutton (1984, 1988), as
part of the linear TD(A) algorithm that we will treat in Chapter 12. The term
\A1\B0semi-gradient\A1\B1 to describe these bootstrapping methods is new to the second
edition of this book.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;The earliest use of state aggregation in reinforcement learning may
have been Michie and Chambers\A1\AFs BOXES system (1968). The theory of state aggre&amp;shy;gation
in reinforcement learning has been developed by Singh, Jaakkola, and Jordan
(1995) and Tsitsiklis and Van Roy (1996). State aggregation has been used in
dynamic programming from its earliest days (e.g., Bellman, 1957a).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l13 level1 lfo41;
tab-stops:36.1pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;9.4&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Sutton (1988) proved convergence of linear TD(0) in
the mean to the minimal MSVE solution for the case in which the feature
vectors, {&lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;(s) : s G S}, are
linearly independent. Convergence with probability 1 was proved by several
researchers at about the same time (Peng, 1993; Dayan and Sejnowski, 1994;
Tsitsiklis, 1994; Gurvits, Lin, and Hanson, 1994). In addition, Jaakkola,
Jordan, and Singh (1994) proved convergence under on-line updating. All of
these results assumed linearly independent feature vectors, which implies at
least as many components to &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;t as
there are states. Convergence for the more important case of general
(dependent) feature vectors was first shown by Dayan (1992). A significant
generalization and strengthening of Dayan\A1\AFs result was proved by Tsitsiklis and
Van Roy (1997). They proved the main result presented in this section, the
bound on the asymptotic error of linear bootstrapping methods.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l13 level1 lfo41;
tab-stops:36.1pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;9.5&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Our presentation of the range of possibilities for
linear function approximation is based on that by Barto (1990).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l71 level1 lfo42;
tab-stops:36.1pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;9.5.3&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;The term &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;coarse coding&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; is due to Hinton (1984), and our Figure 9.6 is
based on one of his figures. Waltz and Fu (1965) provide an early example of
this type of function approximation in a reinforcement learning system.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l71 level1 lfo42;tab-stops:36.1pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;9.5.4&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Tile coding, including hashing, was introduced by
Albus (1971, 1981). He de&amp;shy;scribed it in terms of his \A1\B0cerebellar model
articulator controller,\A1\B1 or CMAC, as tile coding is sometimes known in the
literature. The term \A1\B0tile cod&amp;shy;ing\A1\B1 was new to the first edition of this book,
though the idea of describing CMAC in these terms is taken from Watkins (1989).
Tile coding has been used in many reinforcement learning systems (e.g.,
Shewchuk and Dean, 1990; Lin and Kim, 1991; Miller, Scalera, and Kim, 1994;
Sofge and White, 1992; Tham, 1994; Sutton, 1996; Watkins, 1989) as well as in
other types of learning control systems (e.g., Kraft and Campagna, 1990; Kraft,
Miller, and Dietz, 1992). This section draws heavily on the work of Miller and
Glanz (1996).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection233&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;9.5.5 &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Function approximation using radial basis functions
(RBFs) has received wide attention ever since being related to neural networks
by Broomhead and Lowe (1988). Powell (1987) reviewed earlier uses of RBFs, and
Poggio and Girosi (1989, 1990) extensively developed and applied this approach.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l13 level1 lfo41;
tab-stops:36.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;9.6&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;The introduction of the threshold logic unit as an
abstract model neuron by McCulloch and Pitts (1943) was the beginning of
artificial neural net&amp;shy;works (ANNs). The history of ANNs as learning methods for
classification or regression has passed through several stages: roughly, the
Perceptron (Rosen&amp;shy;blatt, 1962) and ADALINE (ADAptive LINear Element) (Widrow
and Hoff, 1960) stage of learning by single-layer ANNs, the
error-backpropagation stage (Werbos, 1974; LeCun, 1985; Parker, 1985;
Rumelhart, Hinton, and Williams, 1986) of learning by multi-layer ANNs, and the
current deep-learning stage with its emphasis on representation learning (e.g.,
Bengio, Courville, and Vincent, 2012; Goodfellow, Bengio, and Courville, 2016).
Examples of the many books on ANNs are Haykin (1994), Bishop (1995), and Ripley
(2007).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;ANNs as function approximation for reinforcement learning goes back
to the early neural networks of Farley and Clark (1954), who used reinforcement&amp;shy;like
learning to modify the weights of linear threshold functions representing
policies. Widrow, Gupta, and Maitra (1973) presented a neuron-like linear
threshold unit implementing a learning process they called &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;learning
with a critic&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;or &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;selective bootstrap adaptation&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, a reinforcement-learning variant of the ADALINE
algorithm. Werbos (1974, 1987, 1994) developed an approach to prediction and
control that uses ANNs trained by error backpropation to learn policies and
value functions using TD-like algorithms. Barto, Sutton, and Brouwer (1981) and
Barto and Sutton (1981b) extended the idea of an as&amp;shy;sociative memory network
(e.g., Kohonen, 1977; Anderson, Silverstein, Ritz, and Jones, 1977) to
reinforcement learning. Barto, Anderson, and Sutton (1982) used a two-layer ANN
to learn a nonlinear control policy, and em&amp;shy;phasized the first layer&#39;s role of
learning a suitable representation. Hampson (1983, 1989) was an early proponent
of multilayer ANNs for learning value functions. Barto, Sutton, and Anderson
(1983) presented an actor-critic al&amp;shy;gorithm in the form of an ANN learning to
balance a simulated pole (see Sections 15.7 and 15.8). Barto and Anandan (1985)
introduced a stochastic version of Widrow, Gupta, and Maitra\A1\AFs (1973) selective
bootstrap algorithm called the &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;associative
reward-penalty&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;Ar&lt;sub&gt;-&lt;/sub&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;algorithm&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;. Barto (1985, 1986) and Barto and Jordan (1987)
described multi-layer ANNs consisting of &lt;/span&gt;&lt;/span&gt;&lt;span class=434&gt;&lt;span
lang=EN-US&gt;Ar&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;sub&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;-&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
class=434&gt;&lt;span lang=EN-US&gt;p &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;units
trained with a globally-broadcast reinforcement signal to learn classi&amp;shy;fication
rules that are not linearly separable. Barto (1985) discussed this approach to
ANNs and how this type of learning rule is related to others in the literature
at that time. (See Section 15.10 for additional discussion of this approach to
training multi-layer ANNs.) Anderson (1986, 1987, 1989) eval&amp;shy;uated numerous
methods for training multilayer ANNs and showed that an actor-critic algorithm
in which both the actor and critic were implemented by two-layer ANNs trained
by error backpropagation outperformed single&amp;shy;layer ANNs in the pole-balancing
and tower of Hanoi tasks. Williams (1988) described several ways that
backpropagation and reinforcement learning can be combined for training ANNs.
Gullapalli (1990) and Williams (1992) de&amp;shy;vised reinforcement learning
algorithms for neuron-like units having continu&amp;shy;ous, rather than binary,
outputs. Barto, Sutton, and Watkins (1990) argued that ANNs can play
significant roles for approximating functions required for solving sequential
decision problems. Williams (1992) related REINFORCE learning rules (Section
13.3) to the error backpropagation method for train&amp;shy;ing multi-layer ANNs.
Schmidhuber (2015) reviews applications of ANNs in reinforcement learning,
including applications of recurrent ANNs.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l13 level1 lfo41;
tab-stops:36.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;9.7&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;LSTD is due to Bradtke and Barto (see Bradtke, 1993,
1994; Bradtke and Barto, 1996; Bradtke, Ydstie, and Barto, 1994), and was
further developed by Boyan (1999, 2002) and Nedic and Bertsekas (2003). The
incremental update of the inverse matrix has been known at least since 1949
(Sherman and Morrison, 1949). An extension of least-squares methods to control
was introduced by Lagoudakis and Parr (2003).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l13 level1 lfo41;tab-stops:36.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;9.8&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Our discussion of memory-based function approximation
is largely based on the review of locally weighted learning by Atkeson, Moore,
and Schaal (1997). Atkeson (1992) discussed the use of locally weighted
regression in memory- based robot learning and supplied an extensive
bibliography covering the history of the idea. Stanfill and Waltz (1986)
influentially argued for the importance of memory based methods in artificial
intelligence, especially in light of parallel architectures then becoming
available, such as the Connection Machine. Baird and Klopf (1993) introduced a
novel memory-based approach and used it as the function approximation method
for Q-learning applied to the pole-balancing task. Schaal and Atkeson (1994)
applied locally weighted regression to a robot juggling control problem, where it
was used to learn a system model. Ping (1995) used the pole-balancing task to
experiment with several nearest-neighbor methods for approximating value
functions, poli&amp;shy;cies, and environment models. Tadepalli and Ok (1996) obtained
promising results with locally-weighted linear regression to learn a value
function for a simulated automatic guided vehicle task. Bottou and Vapnik
(1996) demon&amp;shy;strated surprising efficiency of several local learning algorithms
compared to non-local algorithms in some pattern recognition tasks, discussing
the impact of local learning on generalization.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;Bentley (1975) introduced k-d trees and reported observing average
running time of O(log n) for nearest neighbor search over &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; records. Friedman, Bent&amp;shy;ley, and Finkel (1977)
clarified the algorithm for nearest neighbor search with k-d trees. Omohundro
(1987) discussed efficiency gains possible with hierar&amp;shy;chical data structures
such as k-d-trees. Moore, Schneider, and Deng (1997) introduced the use of k-d
trees for efficient locally weighted regression.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:21.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l13 level1 lfo41;
tab-stops:36.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;9.9&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;The origin of kernel regression is the &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;method
of potential functions&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt; of Aiz&amp;shy;erman,
Braverman, and Rozonoer (1964). They likened the data to point electric charges
of various signs and magnitudes distributed over space. The resulting electric
potential over space produced by summing the potentials of the point charges
corresponded to the interpolated surface. In this analogy, the kernel function
is the potential of a point charge, which falls off as the reciprocal of the
distance from the charge. Connell and Utgoff (1987) applied an actor-critic
method to the pole-balancing task in which the critic approxi&amp;shy;mated the value
function using kernel regression with inverse distance weight&amp;shy;ing given by
\A1\B0Shepard\A1\AFs function.\A1\B1 Predating widespread interest in kernel regression in
machine learning, these authors did not use the term kernel, but referred to
\A1\B0Shepard\A1\AFs method\A1\AF (Shepard, 1968). Their system could learn to balance the
pole in about 16 episodes. Other kernel-based approaches to reinforcement
learning include those of Ormoneit and Sen (2002), Dietterich and Wang (2002),
Xu, Xie, Hu, Nu, and Lu (2005), Taylor and Parr (2009), Barreto, Precup, and
Pineau (2011), and Bhat, Farias, and Moallemi (2012).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;The earliest example we know of
in which function approximation methods were used for learning value functions
was Samuel\A1\AFs checkers player (1959, 1967). Samuel followed Shannon\A1\AFs (1950)
suggestion that a value function did not have to be exact to be a useful guide
to selecting moves in a game and that it might be approximated by linear
combination of features. In addition to linear function approximation, Samuel
experimented with lookup tables and hierarchical lookup tables called signa&amp;shy;ture
tables (Griffith, 1966, 1974; Page, 1977; Biermann, Fairfield, and Beres,
1982).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;At about the same time as
Samuel\A1\AFs work, Bellman and Dreyfus (1959) proposed using function approximation
methods with DP. (It is tempting to think that Bell&amp;shy;man and Samuel had some
influence on one another, but we know of no reference to the other in the work
of either.) There is now a fairly extensive literature on function
approximation methods and DP, such as multigrid methods and methods using
splines and orthogonal polynomials (e.g., Bellman and Dreyfus, 1959; Bellman,
Kalaba, and Kotkin, 1973; Daniel, 1976; Whitt, 1978; Reetz, 1977; Schweitzer
and Seidmann, 1985; Chow and Tsitsiklis, 1991; Kushner and Dupuis, 1992; Rust,
1996).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Holland\A1\AFs (1986) classifier
system used a selective feature-match technique to gen&amp;shy;eralize evaluation
information across state-action pairs. Each classifier matched a subset of
states having specified values for a subset of features, with the remaining
features having arbitrary values (\A1\B0wild cards\A1\B1). These subsets were then used
in a conventional state-aggregation approach to function approximation.
Holland\A1\AFs idea was to use a genetic algorithm to evolve a set of classifiers
that collectively would im&amp;shy;plement a useful action-value function. Holland\A1\AFs
ideas influenced the early research of the authors on reinforcement learning,
but we focused on different approaches to function approximation. As function
approximators, classifiers are limited in several ways. First, they are
state-aggregation methods, with concomitant limitations in scaling and in representing
smooth functions efficiently. In addition, the matching rules of classifiers
can implement only aggregation boundaries that are parallel to the feature
axes. Perhaps the most important limitation of conventional classifier systems
is that the classifiers are learned via the genetic algorithm, an evolutionary
method. As we discussed in Chapter &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, there is available during learning much more
detailed information about how to learn than can be used by evolutionary
methods. This perspective led us to instead adapt supervised learning methods
for use in rein&amp;shy;forcement learning, specifically gradient-descent and neural
network methods. These differences between Holland&#39;s approach and ours are not
surprising because Holland&#39;s ideas were developed during a period when neural
networks were generally regarded as being too weak in computational power to be
useful, whereas our work was at the beginning of the period that saw widespread
questioning of that conventional wisdom. There remain many opportunities for combining
aspects of these different approaches.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Christensen and Korf (1986) experimented with
regression methods for modifying coefficients of linear value function
approximations in the game of chess. Chapman and Kaelbling (1991) and Tan
(1991) adapted decision-tree methods for learning value functions. Explanation-based
learning methods have also been adapted for learning value functions, yielding
compact representations (Yee, Saxena, Utgoff, and Barto, 1990; Dietterich and
Flann, 1995).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection234&gt;

&lt;p class=8a style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:23.1pt;
margin-left:1.0pt;line-height:19.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=84&gt;&lt;span lang=EN-US&gt;Chapter 10&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=522 style=&#39;margin-top:0cm;margin-right:117.0pt;margin-bottom:36.85pt;
margin-left:1.0pt;line-height:29.5pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark162&gt;&lt;span class=520&gt;&lt;span lang=EN-US&gt;On-policy Control with
Approximation&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;In this chapter we turn to the control problem with
parametric approximation of the action-value function q(s, a, &lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
class=43MingLiU&gt;&lt;span style=&#39;font-size:5.5pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;\81\96&lt;/span&gt;&lt;/span&gt;&lt;span class=43MingLiU&gt;&lt;span
style=&#39;font-size:5.5pt;font-weight:normal&#39;&gt;\A3\A8&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;s,a), where &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;d&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;is a finite-dimensional
weight vector. We continue to restrict attention to the on-policy case, leaving
off- policy methods to Chapter 11. The present chapter features the
semi-gradient Sarsa algorithm, the natural extension of semi-gradient TD(0)
(last chapter) to action values and to on-policy control. In the episodic case,
the extension is straightforward, but in the continuing case we have to take a
few steps backward and re-examine how we have used discounting to define an
optimal policy. Surprisingly, once we have genuine function approximation we
have to give up discounting and switch to a new \A1\B0average-reward\A1\B1 formulation of
the control problem with new value functions.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:48.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Starting first in the episodic case, we extend the
function approximation ideas presented in the last chapter from state values to
action values. Then we extend them to control following the general pattern of
on-policy GPI, using e-greedy for action selection. We show results for n-step
linear Sarsa on the Mountain Car problem. Then we turn to the continuing case
and repeat the development of these ideas for the average-reward case with
differential values.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=823 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:18.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l20 level1 lfo43;
tab-stops:45.4pt;background:transparent&#39;&gt;&lt;a name=bookmark163&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;10.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Episodic Semi-gradient Control&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:center 375.4pt right 399.4pt;
background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;The extension of the
semi-gradient prediction methods of Chapter 9 to action values is
straightforward. In this case it is the approximate action-value function, &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; ^&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;that&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;is represented as a parameterized functional form with weight vector
&lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;. Whereas before we considered random training
examples of the form S&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;^ U&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, now we consider examples of the form S&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;, A&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;^ U&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;. The target U&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;can be any
approximation of q&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;(S&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, A&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;), including the usual backed-up values such as the
full Monte Carlo return, G&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, or any of the n-step Sarsa returns (7.4). The
general gradient-descent update for action-value prediction is&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.8pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
21.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 395.9pt;
background:transparent&#39;&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;t+i = &lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;t + &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; Ut - q(St, At, &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;t) Vq(St, At, &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;t).&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(10.1)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:14.25pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;For example, the update for the one-step Sarsa method is&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.25pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
21.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;t+i &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;t + a
Rt+i + &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;q(St+i,
At+i, &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;t) - q(St, At, &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;t) Vq(St, At, &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;t). (&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;We call this method &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;episodic
semi-gradient one-step Sarsa.&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;
For a constant policy, this method converges in the same way that TD(0) does,
with the same kind of error bound (9.13).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
21.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;To form control methods, we need to couple such
action-value prediction methods with techniques for policy improvement and
action selection. Suitable techniques applicable to continuous actions, or to
actions from large discrete sets, are a topic of ongoing research with as yet
no clear resolution. On the other hand, if the action set is discrete and not
too large, then we can use the techniques already developed in pre&amp;shy;vious
chapters. That is, for each possible action &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; available in the current state St, we can compute
q(St, a, &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;t) and then find the
greedy action Ajf = argmax&lt;sub&gt;a&lt;/sub&gt; q(St, a, &lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;t). Policy improvement is then done (in the on-policy
case treated in this chapter) by changing the estimation policy to a soft
approximation of the greedy policy such as the e-greedy policy. Actions are
selected according to this same policy. Pseudocode for the complete algorithm
is given in the box.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.5pt;
margin-left:1.0pt;text-indent:21.0pt;line-height:9.5pt;mso-line-height-rule:
exactly;background:black&#39;&gt;&lt;span class=515&gt;&lt;span lang=EN-US&gt;Episodic
Semi-gradient Sarsa for Estimating &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span
class=515&gt;&lt;span lang=EN-US&gt; ^&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.3pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
21.0pt;line-height:9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Input: a differentiable function q : S x &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; x R&lt;sup&gt;d&lt;/sup&gt; R&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:78.0pt;margin-bottom:0cm;
margin-left:22.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Initialize
value-function weights &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;G R&lt;sup&gt;d&lt;/sup&gt;
arbitrarily (e.g., &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;) Repeat (for each episode):&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:101.0pt;margin-bottom:0cm;
margin-left:22.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;S, A \A1\AA initial
state and action of episode (e.g., e-greedy) Repeat (for each step of episode):&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:216.0pt;margin-bottom:0cm;
margin-left:44.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Take action A,
observe R, S&lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;f&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;If S&lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; is terminal:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:44.0pt;text-indent:15.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=4395pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;+ a [R
- q(S, A, &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;)] Vq(S, A, &lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:101.0pt;margin-bottom:0cm;
margin-left:44.0pt;margin-bottom:.0001pt;text-indent:15.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;Go to next episode Choose A&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;as a function of q(S&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
font-weight:normal&#39;&gt;;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;, \A1\F6, &lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;) (e.g., e-greedy) &lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;+ a[R + Yq(S&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, A&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;) - q(S, A, &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;)]
Vq(S, A, &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:44.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;S \A1\AA S&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:28.15pt;
margin-left:44.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
9.0pt;mso-line-height-rule:exactly;tab-stops:67.5pt;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;A&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Example 10.1: Mountain
Car Task &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Consider the task of
driving an underpow&amp;shy;ered car up a steep mountain road, as suggested by the
diagram in the upper left of Figure 10.1. The difficulty is that gravity is
stronger than the car&#39;s engine, and even at full throttle the car cannot
accelerate up the steep slope. The only solution is to first move away from the
goal and up the opposite slope on the left. Then, by&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:258.8pt;mso-element-frame-height:
237.65pt;mso-element-frame-hspace:162.9pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:298.65pt;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=562 height=317&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=317 style=&#39;padding-top:0cm;padding-right:
  162.9pt;padding-bottom:0cm;padding-left:162.9pt&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:258.8pt;
  mso-element-frame-height:237.65pt;mso-element-frame-hspace:162.9pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:298.65pt;mso-element-top:
  .05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_39&#34;
   o:spid=&#34;_x0000_i1083&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image109&#34; style=&#39;width:258.75pt;
   height:237.75pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image108.png&#34;
    o:title=&#34;image109&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:398.75pt;mso-element-frame-height:
24.25pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
mso-element-anchor-horizontal:column;mso-element-left:162.95pt;mso-element-top:
250.95pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=532 height=32&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=32 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=afffff8 style=&#39;line-height:12.1pt;mso-line-height-rule:exactly;
  tab-stops:center 77.8pt right 134.2pt 156.1pt 179.75pt 214.75pt 234.15pt 266.6pt 289.25pt 308.9pt 357.5pt 398.75pt;
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  mso-element-frame-height:24.25pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:162.95pt;
  mso-element-top:250.95pt&#39;&gt;&lt;span lang=EN-US&gt;Figure 10.1:&lt;span
  style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;The&lt;span
  style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;Mountain&lt;span style=&#39;mso-tab-count:
  1&#39;&gt;&amp;nbsp; &lt;/span&gt;Car&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;task&lt;span
  style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;(upper&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;left&lt;span
  style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;panel)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;and&lt;span
  style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;the&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;cost-to-go&lt;span
  style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;function&lt;/span&gt;&lt;/p&gt;
  &lt;p class=afffff8 style=&#39;line-height:12.1pt;mso-line-height-rule:exactly;
  background:transparent;mso-element:frame;mso-element-frame-width:398.75pt;
  mso-element-frame-height:24.25pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:162.95pt;
  mso-element-top:250.95pt&#39;&gt;&lt;span lang=EN-US&gt;(-max&lt;sub&gt;a&lt;/sub&gt; q(s, a, w))
  learned during one run.&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

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 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=314 style=&#39;line-height:6.0pt;mso-line-height-rule:exactly;
    background:transparent&#39;&gt;&lt;span class=31Exact&gt;&lt;span lang=EN-US
    style=&#39;font-size:6.0pt;letter-spacing:0pt&#39;&gt;104&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;applying full throttle the car can build up enough
inertia to carry it up the steep slope even though it is slowing down the whole
way. This is a simple example of a continuous control task where things have to
get worse in a sense (farther from the goal) before they can get better. Many
control methodologies have great difficulties with tasks of this kind unless
explicitly aided by a human designer.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.1pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
12.0pt;line-height:13.35pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The reward in this problem is -1 on all time steps until the car
moves past its goal position at the top of the mountain, which ends the
episode. There are three possible actions: full throttle forward (+&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;), full throttle reverse (-&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;), and zero throttle (&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;). The car moves according to a simplified physics. Its position,
xt, and velocity, xt, are updated by&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.2pt;
margin-left:27.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;xt+i == bound [xt + xt+i]&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.85pt;
margin-left:27.0pt;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Xt+i == bound [xt + 0.001 &lt;/span&gt;&lt;span
class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\9E\E9&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;-0.0025 cos(3xt)],&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:7.3pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.35pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where the bound operation enforces \A1\AA1.2 &amp;lt; x^+i &amp;lt; 0.5 and \A1\AA0.07
&amp;lt; x^+i &amp;lt; 0.07. In addition, when x&lt;sub&gt;t+i&lt;/sub&gt; reached the left bound,
x&lt;sub&gt;t+i&lt;/sub&gt; was reset to zero. When it reached the right bound, the goal
was reached and the episode was terminated. Each episode started from a random
position xt G [-0.6, -0.4) and zero velocity. To convert the two continuous
state variables to binary features, we used grid-tilings as in Figure 9.9. We
used &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; tilings, with each tile covering 1/8th of the bounded distance in
each dimension, and asymmetrical offsets as described in Section 9.5.4.&lt;sup&gt;i&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:12.0pt;
line-height:8.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=21b&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;In particular,
we used the tile-coding software, available on the web, version 3 (Python),
with&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.25pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.55pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;The feature vectors &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;(s, a) created by tile coding were then combined linearly with the
parameter vector to approximate the action-value function:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.1pt;
margin-left:27.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
9.5pt;mso-line-height-rule:exactly;tab-stops:right 400.55pt;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;q(s, a, &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;(s, a) = ^^ w^ &lt;/span&gt;&lt;/span&gt;&lt;span class=43MingLiU&gt;&lt;span
lang=EN-US style=&#39;font-size:5.5pt;font-weight:normal&#39;&gt;&amp;#8226;&lt;/span&gt;&lt;/span&gt;&lt;span
class=43MingLiU&gt;&lt;span style=&#39;font-size:5.5pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;\B6\F8&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;(s, a),&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(10.3)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=208 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.5pt;
margin-left:154.0pt;line-height:8.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=20-1pt&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-bottom:1.85pt;text-align:justify;text-justify:inter-ideograph;
line-height:9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;for each pair of state, s, and action, a.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Figure &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;10.1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; shows what typically happens while learning to
solve this task with this form of function approximation&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;.&lt;a
style=&#39;mso-footnote-id:ftn17&#39; href=&#34;#_ftn17&#34; name=&#34;_ftnref17&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=43Georgia&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA;font-weight:normal&#39;&gt;[17]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; Shown is the negative of the value function (the &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;cost-to-go&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; function) learned on a single run. The initial
action values were all zero, which was optimistic (all true values are negative
in this task), causing extensive exploration to occur even though the
exploration parameter, e, was 0. This can be seen in the middle-top panel of
the figure, labeled \A1\B0Step 428\A1\B1. At this time not even one episode had been
completed, but the car has oscillated back and forth in the valley, following
circular trajectories in state space. All the states visited frequently are
valued worse than unexplored states, because the actual rewards have been worse
than what was (unrealistically) expected. This continually drives the agent
away from wherever it has been, to explore new states, until a solution is
found.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.3pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Figure &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;10.2&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; shows several learning curves for semi-gradient
Sarsa on this problem, with various step sizes.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:217.7pt;mso-element-frame-height:
133.9pt;mso-element-frame-hspace:76.55pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:210.8pt;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=392 height=179&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=179 style=&#39;padding-top:0cm;padding-right:
  76.55pt;padding-bottom:0cm;padding-left:76.55pt&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:217.7pt;
  mso-element-frame-height:133.9pt;mso-element-frame-hspace:76.55pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:210.8pt;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_40&#34; o:spid=&#34;_x0000_i1082&#34;
   type=&#34;#_x0000_t75&#34; alt=&#34;image112&#34; style=&#39;width:218.25pt;height:134.25pt;
   visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image111.jpg&#34;
    o:title=&#34;image112&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:72.7pt;mso-element-frame-height:
40.55pt;mso-element-frame-hspace:76.55pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:130.65pt;mso-element-top:43.85pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=199 height=54&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=54 style=&#39;padding-top:0cm;padding-right:
  76.55pt;padding-bottom:0cm;padding-left:76.55pt&#39;&gt;
  &lt;p class=292 align=center style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;
  text-align:center;line-height:10.5pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:72.7pt;mso-element-frame-height:
  40.55pt;mso-element-frame-hspace:76.55pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:130.65pt;mso-element-top:43.85pt&#39;&gt;&lt;span lang=EN-US&gt;Mountain
  Car&lt;/span&gt;&lt;/p&gt;
  &lt;p class=3f align=center style=&#39;text-align:center;line-height:10.45pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:72.7pt;mso-element-frame-height:40.55pt;mso-element-frame-hspace:
  76.55pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:130.65pt;mso-element-top:
  43.85pt&#39;&gt;&lt;span class=3b&gt;&lt;span lang=EN-US&gt;Steps per episode log scale&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=2fb align=center style=&#39;text-align:center;line-height:7.0pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:72.7pt;mso-element-frame-height:40.55pt;mso-element-frame-hspace:
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  mso-element-anchor-horizontal:column;mso-element-left:130.65pt;mso-element-top:
  43.85pt&#39;&gt;&lt;span class=2e&gt;&lt;span lang=EN-US&gt;averaged over 100 runs&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:399.35pt;mso-element-frame-height:
23.9pt;mso-element-frame-hspace:76.55pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:105.55pt;mso-element-top:148.7pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=634 height=32&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=32 style=&#39;padding-top:0cm;padding-right:
  76.55pt;padding-bottom:0cm;padding-left:76.55pt&#39;&gt;
  &lt;p class=8b style=&#39;line-height:12.0pt;mso-line-height-rule:exactly;
  tab-stops:right 399.35pt;background:transparent;mso-element:frame;mso-element-frame-width:
  399.35pt;mso-element-frame-height:23.9pt;mso-element-frame-hspace:76.55pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:105.55pt;mso-element-top:
  148.7pt&#39;&gt;&lt;span class=83&gt;&lt;span lang=EN-US&gt;Figure 10.2: Mountain Car learning
  curves for the semi-gradient Sarsa method with tile- coding function approximation
  and e-greedy action selection.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:15.2pt;margin-right:0cm;margin-bottom:4.05pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=4395pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Exercise 10.1 &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;Why have we not considered Monte Carlo methods in this chapter?&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection235&gt;

&lt;p class=823 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:2.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l20 level1 lfo43;
tab-stops:45.9pt 45.9pt;background:transparent&#39;&gt;&lt;a name=bookmark164&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;10.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;n-step Semi-gradient Sarsa&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:23.0pt;margin-bottom:16.55pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;We can obtain an n-step version of episodic semi-gradient Sarsa by
using an n- step return as the update target in the semi-gradient Sarsa update equation
(10.1). The n-step return immediately generalizes from its tabular form (7.4)
to a function approximation form:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.25pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t:t+n = &lt;sup&gt;R&lt;/sup&gt;t+i+&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + &#39; &#39; &#39;+&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;^ &lt;/span&gt;&lt;span class=9pt8&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span class=MingLiUff7&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;\B3\F3&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+n+&#39;TKA+n, &lt;sup&gt;A&lt;/sup&gt;t+n,
&lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+n&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;l), &lt;sup&gt;n&lt;/sup&gt; ^ &lt;/span&gt;&lt;span
class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\B9\A4&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=ZH-TW style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; ^ &lt;span class=afff7&gt;t&lt;/span&gt; &amp;lt; &lt;sup&gt;T-n&lt;/sup&gt;,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-top:0cm;margin-right:23.0pt;
margin-bottom:12.05pt;margin-left:0cm;text-align:right;text-indent:0cm;
line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;(10.4)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.6pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;with Gt&lt;/span&gt;&lt;span class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt;
mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+n == Gt if &lt;span
class=afff7&gt;t&lt;/span&gt; + n &amp;gt; T, as usual. The n-step update equation is&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.5pt;
margin-left:16.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:right 403.1pt;
background:transparent&#39;&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+n == &lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+n&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;l + a [Gt&lt;/span&gt;&lt;span
class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+n _ q(St, At, &lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+n&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;l)] Vq(St, At, &lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+n&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;l),&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &amp;lt; t &amp;lt; T.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-top:0cm;margin-right:23.0pt;
margin-bottom:13.4pt;margin-left:0cm;text-align:right;text-indent:0cm;
line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;(10.5)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.2pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Complete pseudocode is given in the box below.&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:11.95pt;
margin-left:16.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
black&#39;&gt;&lt;span class=515&gt;&lt;span lang=EN-US&gt;Episodic semi-gradient &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang0&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
class=515&gt;&lt;span lang=EN-US&gt;-step Sarsa for estimating &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang0&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;q &lt;/span&gt;&lt;/span&gt;&lt;span
class=515&gt;&lt;span lang=EN-US&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang0&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span class=515&gt;&lt;span
lang=EN-US&gt;^, or &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang0&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;q &lt;/span&gt;&lt;/span&gt;&lt;span class=515&gt;&lt;span lang=EN-US&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang0&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span
class=515&gt;&lt;span lang=EN-US&gt;^&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:102.0pt;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Input: a differentiable
function q : S x A x R&lt;sup&gt;d&lt;/sup&gt; R, possibly n Initialize value-function
weight vector &lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;arbitrarily (e.g., &lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span
lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:16.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Parameters: step size a &amp;gt; 0, small
e &amp;gt; 0, a positive integer n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.0pt;
margin-left:16.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;All store and access operations (St, At, and Rt) can take their
index mod n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:16.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Repeat (for each episode):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize and store So = terminal&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Select and store an action Ao &lt;/span&gt;&lt;span
class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;n(-|So) or e-greedy wrt q(So, \A1\F6, &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;T \A1\AA o&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;For t = 0, 1, 2, . . . :&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;| If t &amp;lt; T, then:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 274.1pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Take
action At&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 146.15pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;Observe and store the next reward as Rt+i and
the next state as St+i&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 274.1pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;If
St+i is terminal, then:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 146.15pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;T
\A1\AA t + 1&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 274.1pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;else:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 369.35pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Select
and store At+i &lt;/span&gt;&lt;span class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;
mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;n(-|St+i) or e-greedy
wrt q(St+i, \A1\F6, &lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:124.1pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;| &lt;/span&gt;&lt;span
class=CenturySchoolbookf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;\A1\AA t - n + &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;span
class=CenturySchoolbookf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;is the time whose estimate is being updated)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 274.1pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;If
&lt;/span&gt;&lt;span class=CenturySchoolbookf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&amp;gt; 0:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.95pt;mso-line-height-rule:exactly;
tab-stops:right 274.1pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;i&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;g &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;\A1\AA &lt;span class=-1pt0&gt;srn^i+o&lt;/span&gt; &lt;/span&gt;&lt;span
class=CenturySchoolbookf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;y &lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;i&lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;i&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;Ri&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.95pt;mso-line-height-rule:exactly;
tab-stops:right 274.1pt center 364.3pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;|&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;If
&lt;/span&gt;&lt;span class=CenturySchoolbookf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+ n &amp;lt; T, then &lt;span class=afff7&gt;G&lt;/span&gt; \A1\AA &lt;span
class=afff7&gt;G&lt;/span&gt; + &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;(?(S&lt;sub&gt;r&lt;/sub&gt;+n, A+n, &lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;span
class=-1pt0&gt;(G&lt;sub&gt;r&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=-1pt0&gt;\A3\BA&lt;sub&gt;&lt;span
lang=EN-US&gt;r&lt;/span&gt;&lt;/sub&gt;&lt;span lang=EN-US&gt;+n&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.95pt;mso-line-height-rule:exactly;
tab-stops:right 274.1pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+ a [G
- q(S&lt;sub&gt;r&lt;/sub&gt;, A&lt;sub&gt;r&lt;/sub&gt;, &lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)] Vq(S&lt;sub&gt;r&lt;/sub&gt;, A&lt;sub&gt;r&lt;/sub&gt;, &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:20.6pt;
margin-left:30.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.95pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Until &lt;/span&gt;&lt;span class=CenturySchoolbookf2&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= T \A1\AA 1&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-top:0cm;margin-right:23.0pt;
margin-bottom:0cm;margin-left:2.0pt;margin-bottom:.0001pt;text-align:right;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;As we have seen before, performance is best if an
intermediate level of bootstrap&amp;shy;ping is used, corresponding to an n larger than
1. Figure 10.3 shows how this&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:217.7pt;mso-element-frame-height:
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&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:71.3pt;mso-element-frame-height:
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  &lt;td valign=top align=left height=43 style=&#39;padding-top:0cm;padding-right:
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  Car&lt;/span&gt;&lt;/p&gt;
  &lt;p class=3f align=center style=&#39;text-align:center;line-height:10.55pt;
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  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

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&lt;/div&gt;

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  lang=EN-US&gt;Figure 10.3: One-step vs multi-step performance of n-step
  semi-gradient Sarsa on the Moun&amp;shy;tain Car task. Good step sizes were used: &lt;/span&gt;&lt;/span&gt;&lt;span
  class=88pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span
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 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=436 style=&#39;margin-bottom:3.0pt;text-align:justify;text-justify:
    inter-ideograph;line-height:13.45pt;mso-line-height-rule:exactly;
    background:transparent&#39;&gt;&lt;span class=430ptExact&gt;&lt;span lang=EN-US
    style=&#39;font-size:8.0pt;letter-spacing:0pt&#39;&gt;algorithm tends to learn faster
    and obtain a better asymptotic performance at n = &lt;/span&gt;&lt;/span&gt;&lt;span
    class=43Georgia1&gt;&lt;span lang=EN-US style=&#39;letter-spacing:1.0pt;font-weight:
    normal&#39;&gt;8 &lt;/span&gt;&lt;/span&gt;&lt;span class=430ptExact&gt;&lt;span lang=EN-US
    style=&#39;font-size:8.0pt;letter-spacing:0pt&#39;&gt;than at n = 1 on the Mountain
    Car task. Figure 10.4 shows the results of a more detailed study of the
    effect of the parameters a and n on the rate of learning on this task.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=436 style=&#39;margin-bottom:2.9pt;text-align:justify;text-justify:
    inter-ideograph;line-height:13.45pt;mso-line-height-rule:exactly;
    tab-stops:right 398.75pt;background:transparent&#39;&gt;&lt;span class=439pt&gt;&lt;span
    lang=EN-US style=&#39;letter-spacing:0pt&#39;&gt;Exercise &lt;/span&gt;&lt;/span&gt;&lt;span
    class=43CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;letter-spacing:0pt;
    font-weight:normal&#39;&gt;10.2&lt;/span&gt;&lt;/span&gt;&lt;span class=439pt&gt;&lt;span lang=EN-US
    style=&#39;letter-spacing:0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=430ptExact&gt;&lt;span
    lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:0pt&#39;&gt;Give pseudocode for
    semi-gradient one-step &lt;/span&gt;&lt;/span&gt;&lt;span class=437pt0&gt;&lt;span lang=EN-US
    style=&#39;font-size:7.0pt;letter-spacing:0pt;font-weight:normal&#39;&gt;Expected&lt;/span&gt;&lt;/span&gt;&lt;span
    class=430ptExact&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:
    0pt&#39;&gt; Sarsa for con&amp;shy;trol.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;
    line-height:13.55pt;mso-line-height-rule:exactly;tab-stops:right 398.65pt;
    background:transparent&#39;&gt;&lt;span class=439pt&gt;&lt;span lang=EN-US
    style=&#39;letter-spacing:0pt&#39;&gt;Exercise 10.3 &lt;/span&gt;&lt;/span&gt;&lt;span
    class=430ptExact&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:
    0pt&#39;&gt;Why do the results shown in Figure 10.4 have higher standard errors at
    large n than at low n?&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=823 align=left style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:
12.65pt;margin-left:51.0pt;text-align:left;line-height:18.0pt;mso-line-height-rule:
exactly;mso-pagination:lines-together;page-break-after:avoid;mso-list:l20 level1 lfo43;
tab-stops:45.15pt;background:transparent&#39;&gt;&lt;a name=bookmark165&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;10.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Average Reward: A New Problem
Setting for Con&amp;shy;tinuing Tasks&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;We now introduce a third classical setting&lt;/span&gt;&lt;span
class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;alongside the episodic and discounted settings\A1\AAfor formulating the
goal in Markov decision problems (MDPs). Like the discounted setting, the &lt;span
class=afff7&gt;average reward&lt;/span&gt; setting applies to continuing problems, prob&amp;shy;lems
for which the interaction between agent and environment goes on and on for&amp;shy;ever
without termination or start states. Unlike that setting, however, there is no
discounting\A1\AAthe agent cares just as much about delayed rewards as it does about
immediate reward. The average-reward setting is one of the major settings con&amp;shy;sidered
in the classical theory of dynamic programming and, though less often, in
reinforcement learning. As we discuss in the next section, the discounted
setting is problematic with function approximation, and thus the average-reward
setting is needed to replace it.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.35pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In the average-reward setting, the quality of a policy n is defined
as the average rate of reward while following that policy, which we denote as
r(n):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:95.0pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=9pt8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;sup&gt;T&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:31.0pt;text-indent:0cm;line-height:normal;
background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;r(n)&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; == l&lt;sup&gt;im&lt;/sup&gt; t [ &lt;sup&gt;E[R&lt;/sup&gt;t &lt;/span&gt;&lt;span class=9pt8&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;
A&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;o&lt;/span&gt;&lt;span class=MingLiUff7&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t-i &lt;/span&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;n]&lt;/span&gt;&lt;/sup&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:64.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:normal;tab-stops:right 118.5pt;
background:transparent&#39;&gt;&lt;span class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C1\CB&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;400 &lt;/span&gt;&lt;span class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;
mso-ansi-language:ZH-TW&#39;&gt;\81A&lt;/span&gt;&lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;^&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.45pt;
margin-left:95.0pt;text-indent:0cm;line-height:5.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;t=l&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:51.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:6.25pt;mso-line-height-rule:exactly;
tab-stops:right 404.05pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=lim E[Rt |
Ao&lt;/span&gt;&lt;span class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:
EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t-i &lt;/span&gt;&lt;span class=MingLiUff7&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;n] ,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.4pt;
margin-left:64.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:6.25pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;t^^&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:51.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=E &lt;/span&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;sup&gt;s&lt;/sup&gt;)E &lt;sup&gt;n(a|s)&lt;/sup&gt;E p(s&lt;sup&gt;;&lt;/sup&gt;,
r|s, a)r,&lt;/span&gt;&lt;/p&gt;

&lt;p class=208 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.8pt;
margin-left:64.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
8.0pt;mso-line-height-rule:exactly;tab-stops:right 118.5pt;background:transparent&#39;&gt;&lt;span
class=20-1pt&gt;&lt;span lang=EN-US&gt;s&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;a&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;where the expectations are conditioned on the
prior actions, Ao, Ai,..., At&lt;sub&gt;-&lt;/sub&gt;i, being taken according to n, and is
the steady-state distribution, (s) == limt^^ Pr{St = which is assumed to exist
and to be independent of So. This property is known as &lt;span class=afff7&gt;ergodicity&lt;/span&gt;.
It means that where the MDP starts or any early decision made by the agent can
have only a temporary effect; in the long run your expectation of being in a
state depends only on the policy and the MDP transition probabilities.
Ergodicity is sufficient to guarantee the existence of the limits in the
equations above.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;There are subtle distinctions that can be drawn
between different kinds of optimal&amp;shy;ity in the undiscounted continuing case.
Nevertheless, for most practical purposes it may be adequate simply to order
policies according to their average reward per time step, in other words,
according to their r(n). This quantity is essentially the average reward under
n, as suggested by (10.6). In particular, we consider all policies that attain
the maximal value of r(n) to be optimal.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:11.95pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.2pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Note that the steady state distribution is the special distribution
under which, if you select actions according to n, you remain in the same
distribution. That is, for which&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.1pt;
margin-left:64.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 404.05pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;(s)[ n(a|s, w)p(s&#39;|s,a)=&lt;/span&gt;&lt;span
class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(s&#39;).&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(10.7)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.2pt;
margin-left:31.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;sa&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:11.6pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In the average-reward setting, returns are defined in terms of
differences between&lt;br clear=all style=&#39;page-break-before:always&#39;&gt;
rewards and the average reward:&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-bottom:7.25pt;text-align:justify;text-justify:inter-ideograph;
line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;v:shape
 id=&#34;Text_x0020_Box_x0020_414&#34; o:spid=&#34;_x0000_s1342&#34; type=&#34;#_x0000_t202&#34;
 style=&#39;position:absolute;left:0;text-align:left;margin-left:378.65pt;
 margin-top:0;width:30.8pt;height:9pt;z-index:251849514;visibility:visible;
 mso-wrap-style:square;mso-width-percent:0;mso-height-percent:0;
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    &lt;div&gt;
    &lt;p class=436 style=&#39;margin-left:5.0pt;line-height:9.0pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=430ptExact&gt;&lt;span lang=EN-US
    style=&#39;font-size:8.0pt;letter-spacing:0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
    class=43Georgia1&gt;&lt;span lang=EN-US style=&#39;letter-spacing:1.0pt;font-weight:
    normal&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span class=430ptExact&gt;&lt;span lang=EN-US
    style=&#39;font-size:8.0pt;letter-spacing:0pt&#39;&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span
    class=43Georgia1&gt;&lt;span lang=EN-US style=&#39;letter-spacing:1.0pt;font-weight:
    normal&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span class=430ptExact&gt;&lt;span lang=EN-US
    style=&#39;font-size:8.0pt;letter-spacing:0pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Gt &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Rt+i -r&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;) + &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Rt+&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;-r&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;) + &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Rt&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;+3&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; -r&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;) +&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
287.75pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;This is known as the &lt;span
class=afff7&gt;differential&lt;/span&gt; return, and the corresponding value functions
are known as &lt;span class=afff7&gt;differential&lt;/span&gt; value functions. They are
defined in the same way and we will use the same notation for them as we have
all along:&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) == En[&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;G&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t = &lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;] and&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:15.15pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;n(&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;s, a&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) &lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= En[&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;G&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t = &lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;s, A&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t = &lt;/span&gt;&lt;span class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;] (similarly for &lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;* &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;and &lt;/span&gt;&lt;span class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;).Differential value functions also have Bellman equations, just
slightly different from those we have seen earlier. We simply remove all &lt;/span&gt;&lt;span
class=Georgia2&gt;&lt;span lang=EN-US&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;s and replace
all rewards by the difference between the reward and the true average reward:&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:.4pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;mso-list:l53 level1 lfo44;
tab-stops:right 184.7pt left 33.3pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal;mso-bidi-font-weight:bold&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=43Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;n(&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;= ^2&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;^&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;&#39;&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, r&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;s, a&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;r&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;r&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;) + &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;^(&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;&#39;&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:72.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;
tab-stops:center 121.9pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;r&lt;/span&gt;&lt;span
class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\AC&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;s.&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection236&gt;

&lt;p class=MsoNormal&gt;&lt;!--[if mso &amp; !supportInlineShapes &amp; supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-begin;mso-field-lock:yes&#39;&gt;&lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;SHAPE &lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;\* MERGEFORMAT &lt;span style=&#39;mso-element:
field-separator&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;span lang=EN-US&gt;&lt;v:shape id=&#34;Text_x0020_Box_x0020_413&#34;
 o:spid=&#34;_x0000_s1341&#34; type=&#34;#_x0000_t202&#34; style=&#39;width:595.45pt;height:8.15pt;
 visibility:visible;mso-wrap-style:square;mso-left-percent:-10001;
 mso-top-percent:-10001;mso-position-horizontal:absolute;
 mso-position-horizontal-relative:char;mso-position-vertical:absolute;
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style=&#39;font-size:10.5pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;
p(s&#39;, r|s, a) r&lt;/span&gt;\A3\AC&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;span class=739pt&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=739pt&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;q*(s,a) = &lt;/span&gt;&lt;span class=73MingLiU&gt;&lt;span style=&#39;font-size:21.5pt;
mso-ansi-language:ZH-TW;font-weight:normal&#39;&gt;\B6\FE&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;p(s&#39;,r|s,a) r&lt;/span&gt;\A3\AC&lt;span
lang=EN-US&gt;s&lt;/span&gt;&lt;span class=739pt&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=739pt&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(cf. Eqs. 3.14, 4.1, and 4.2).&lt;/span&gt;&lt;/p&gt;

&lt;p class=153 align=center style=&#39;margin-bottom:11.95pt;text-align:center;
line-height:9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=15CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span
class=151&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=center style=&#39;margin-bottom:23.85pt;text-align:center;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;r - r(n) + v*(s&#39;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;-r(n) + max q*(s&#39;, a&#39;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=center style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:
0cm;margin-left:0cm;margin-bottom:.0001pt;text-align:center;line-height:8.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=21b&gt;&lt;span
lang=EN-US&gt;a&lt;sup&gt;7&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection238&gt;

&lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:25.2pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;There is also a differential form of the two TD
errors:&lt;/span&gt;&lt;/p&gt;

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  &lt;![if !mso]&gt;
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   &lt;tr&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;^t == Rt+i-Rt+i + v(St+i,wt) - v(St,wt), and ^t = &lt;sup&gt;R&lt;/sup&gt;t+i&lt;sup&gt;-R&lt;/sup&gt;t+i
+ 3&lt;sup&gt;(S&lt;/sup&gt;t+i, &lt;sup&gt;A&lt;/sup&gt;t+i, &lt;sup&gt;w&lt;/sup&gt;t&lt;sup&gt;) -&lt;/sup&gt; 3&lt;sup&gt;(S&lt;/sup&gt;t,
&lt;sup&gt;A&lt;/sup&gt;t, &lt;sup&gt;w&lt;/sup&gt;t).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:0cm;
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transparent&#39;&gt;&lt;span lang=EN-US&gt;where Rt is an estimate at time &lt;span
class=afff7&gt;t&lt;/span&gt; of the average reward r(n). With these alternate
definitions, most of our algorithms and many theoretical results carry through
to the average-reward setting.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:14.95pt;
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lang=EN-US&gt;For example, the average reward version of semi-gradient Sarsa is
defined just as in (10.2) except with the differential version of the TD error.
That is, by&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;wt+i == wt + a^tVq(St, At, wt),&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:0cm;
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text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;with ^t given by (10.10). The pseudocode for the
complete algorithm is given on the next page.&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-bottom:8.55pt;text-indent:15.0pt;line-height:9.5pt;
mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span class=515&gt;&lt;span
lang=EN-US&gt;Differential semi-gradient Sarsa for estimating &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span
class=515&gt;&lt;span lang=EN-US&gt; ^&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
15.0pt;line-height:13.9pt;mso-line-height-rule:exactly;tab-stops:center 254.5pt;
background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Input: a
differentiable function q : S x &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; x R&lt;sup&gt;d&lt;/sup&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;R&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-bottom:3.2pt;text-align:justify;text-justify:inter-ideograph;
text-indent:15.0pt;line-height:13.9pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Parameters: step sizes a, ^ &amp;gt;
0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:77.0pt;margin-bottom:3.2pt;
margin-left:15.0pt;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Initialize value-function weights
&lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;G R&lt;sup&gt;d&lt;/sup&gt; arbitrarily (e.g., &lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;) Initialize average reward estimate &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; arbitrarily (e.g., R = 0) Initialize state &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, and action &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Repeat (for each step):&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:30.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Take action A,
observe R, &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt;font-weight:normal&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span class=43MingLiU0&gt;&lt;span
style=&#39;font-size:4.5pt;font-weight:normal&#39;&gt;ح&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:30.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Choose A&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
font-weight:normal&#39;&gt;;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;as a function of q(S&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
font-weight:normal&#39;&gt;;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;, \A1\F6, &lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;) (e.g., e-greedy)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:30.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;5&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt; R - R + q(S&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, A&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;) - q(S, A, &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:30.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;R \A1\AA R + ^5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:30.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;+ a5Vq(S, A, &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:121.0pt;margin-bottom:30.0pt;
margin-left:30.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;S \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
class=43MingLiU0&gt;&lt;span style=&#39;font-size:4.5pt;font-weight:normal&#39;&gt;ح &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;^A&lt;/span&gt;&lt;/span&gt;&lt;span
class=4310pt&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:10.0pt;font-weight:normal&#39;&gt;f&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Example 10.2: An
Access-Control Queuing Task &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;This
is a decision task involving access control to a set of &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; servers. Customers of four different priorities
arrive at a single queue. If given access to a server, the customers pay a
reward of 1, 2, 4, or &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt; to the server, depending on their priority, with higher priority
customers paying more. In each time step, the customer at the head of the queue
is either accepted (assigned to one of the servers) or rejected (removed from
the queue, with a reward of zero). In either case, on the next time step the
next customer in the queue is considered. The queue never empties, and the
priorities of the customers in the queue are equally randomly distributed. Of
course a customer can not be served if there is no free server; the customer is
always rejected in this case. Each busy server becomes free with probability &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; on each time step. Although we have just described
them for definiteness, let us assume the statistics of arrivals and departures
are unknown. The task is to decide on each step whether to accept or reject the
next customer, on the basis of his priority and the number of free servers, so
as to maximize long-term reward without discounting.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;In this example we consider a tabular solution to
this problem. Although there is no generalization between states, we can still
consider it in the general function approximation setting as this setting
generalizes the tabular setting. Thus we have a differential action-value
estimate for each pair of state (number of free servers and priority of the
customer at the head of the queue) and action (accept or reject). Figure 10.5
shows the solution found by differential semi-gradient Sarsa for this task with
k = 10 and p = 0.06. The algorithm parameters were a = 0.01,&lt;/span&gt;&lt;/span&gt;&lt;span
class=43MingLiU&gt;&lt;span style=&#39;font-size:5.5pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;¬&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;=0.01, and e
= &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;
font-weight:normal&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;. The initial action values and R were zero.&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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AAsBAAAPAAAAAAAAAAAAAAAAAA8FAABkcnMvZG93bnJldi54bWxQSwUGAAAAAAQABADzAAAAGgYA
AAAA
&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=343 align=left style=&#39;margin:0cm;margin-bottom:.0001pt;text-align:
    left;line-height:8.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=34Exact1&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:0pt&#39;&gt;Number
    of free servers&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;a name=bookmark166&gt;&lt;span lang=EN-US&gt;Deprecating the Discounted
Setting&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;The continuing, discounted problem formulation has
been very useful in the tabular case, in which the returns from each state can
be separately identified and averaged. But in the approximate case it is
questionable whether one should ever use this problem formulation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;To see why, consider an infinite sequence of returns
with no beginning or end, and no clearly identified states. The states might be
represented only by feature vectors, which may do little to distinguish the
states from each other. As a special case, all of the feature vectors may be
the same. Thus one really has only the reward sequence (and the actions), and
performance has to be assessed purely from these. How could it be done? One way
is by averaging the rewards over a long interval\A1\AAthis is the idea of the
average-reward setting. How could discounting be used? Well, for each time step
we could measure the discounted return. Some returns would be small and some
big, so again we would have to average them over a sufficiently large time
interval. In the continuing setting there are no starts and ends, and no
special time steps, so there is nothing else that could be done. However, if
you do this, it turns out that the average of the discounted returns is
proportional to the average reward. In fact, for policy n, the average of the
discounted returns is always r(n)/(1 - &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;), &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection239&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;that is, it is essentially the average reward, r(n).
In particular, the &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;ordering&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; of all policies in the average discounted return
setting would be exactly the same as in the average-reward setting. The
discount rate &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt; thus has no effect on the problem formulation. It could in fact be &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;zero&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; and the ranking would be unchanged.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;This surprising fact is proven in the box, but the
basic idea can be seen via a symmetry argument. Each time step is exactly the
same as every other. With discounting, every reward will appear exactly once in
each position in some return. The tth reward will appear undiscounted in the t
- 1st return, discounted once in the t - 2nd return, and discounted 999 times
in the t - 1000th return. The weight on the tth reward is thus 1 + &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; + y&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; + y&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;3&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; + \A1\F6\A1\F6\A1\F6 = 1/(1 - &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;). Since all states are the same, they are all
weighted by this, and thus the average of the returns will be this times the
average reward, or r(n&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;)/(1&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt; - &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:69.55pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;So in this key case, what the discounted case was
invented for, discounting is not applicable. The discounted case is still
pertinent, or at least possible, for the episodic case.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.35pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
14.0pt;line-height:9.0pt;mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span
class=435&gt;&lt;span lang=EN-US&gt;The Futility of Discounting in Continuing Problems&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:17.0pt;margin-bottom:15.55pt;
margin-left:16.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Perhaps discounting can be saved
by choosing an objective that sums dis&amp;shy;counted values over the distribution
with which states occur under the policy:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.4pt;
margin-left:31.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
9.0pt;mso-line-height-rule:exactly;tab-stops:right 210.55pt left 213.9pt;
background:transparent&#39;&gt;&lt;span class=438pt0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;J&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;sup&gt;&lt;span lang=EN-US&gt; (n)&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; = I]
(s)vj(s)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(where&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;v? is the discounted value function)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=208 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.85pt;
margin-left:73.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
8.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=20-1pt&gt;&lt;span
lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.2pt;
margin-left:56.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;=E &lt;/span&gt;&lt;/span&gt;&lt;span class=43MingLiU&gt;&lt;span style=&#39;font-size:5.5pt;
mso-ansi-language:ZH-TW;font-weight:normal&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;(&lt;sup&gt;s&lt;/sup&gt;)E &lt;/span&gt;&lt;/span&gt;&lt;span class=43MingLiU&gt;&lt;span
style=&#39;font-size:5.5pt;mso-ansi-language:ZH-TW;font-weight:normal&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;(a|s) E y^p(s&#39;, r|s, a) [r + &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;#(s&#39;)] (Bellman Eq.)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=8d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.85pt;
margin-left:73.0pt;line-height:9.0pt;mso-line-height-rule:exactly;tab-stops:
center 119.55pt 166.85pt;background:transparent&#39;&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-begin&#39;&gt;&lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;TOC \o &amp;quot;1-5&amp;quot; \h \z &lt;span
style=&#39;mso-element:field-separator&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;span lang=EN-US&gt;s&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;a&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;s&lt;/span&gt;&lt;span
class=8CenturySchoolbook&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=8CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=8CenturySchoolbook0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;r&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=8d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:56.0pt;margin-bottom:.0001pt;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=r(n) + [&lt;/span&gt;&lt;span
class=8MingLiU&gt;&lt;span style=&#39;font-size:4.5pt;mso-ansi-language:ZH-TW;font-weight:
normal&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span class=88pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt;font-weight:normal&#39;&gt;(s)Yl&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span
class=8MingLiU0&gt;&lt;span style=&#39;font-size:5.5pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(a|s) [ [ W, r|s, a)&lt;/span&gt;&lt;span
class=8Georgia1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;v&lt;sup&gt;Y&lt;/sup&gt;(s&#39;) (from (&lt;/span&gt;&lt;span class=8Georgia1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=8Georgia1&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;))&lt;/span&gt;&lt;/p&gt;

&lt;p class=8d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.1pt;
margin-left:112.0pt;line-height:9.0pt;mso-line-height-rule:exactly;tab-stops:
right 160.7pt 210.55pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;s&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;a&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;s&lt;/span&gt;&lt;span
class=8CenturySchoolbook&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=8CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;r&lt;/span&gt;&lt;/p&gt;

&lt;p class=8d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:56.0pt;margin-bottom:.0001pt;line-height:9.5pt;mso-line-height-rule:
exactly;tab-stops:188.5pt 320.0pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=r(n)
+ &lt;/span&gt;&lt;span class=8Georgia1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;
font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; Evy (s&#39;)E&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(s)
n(a|s)p(s&lt;/sup&gt; |&lt;sup&gt;s&lt;/sup&gt;, &lt;sup&gt;a)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(from
(3&lt;/sup&gt;.&lt;sup&gt;10))&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=8d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.4pt;
margin-left:112.0pt;line-height:9.0pt;mso-line-height-rule:exactly;tab-stops:
right 210.55pt 212.6pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;span
class=8CenturySchoolbook&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=8CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;s&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;a&lt;/span&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-end&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:56.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:320.0pt;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;=r(n) + &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; [ v&lt;sup&gt;Y&lt;/sup&gt;(s&#39;)^n(s&#39;)&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(from
(10.7))&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:112.0pt;margin-bottom:.0001pt;line-height:17.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=21ArialUnicodeMS1&gt;&lt;sub&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;s&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span class=21b&gt;&lt;span
lang=EN-US&gt;7&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:56.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:17.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;=r(n) + &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;J (n)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.9pt;
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lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Georgia&#34;,&#34;serif&#34;;mso-fareast-font-family:
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exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;The proposed
discounted objective orders policies identically to the undis&amp;shy;counted (average
reward) objective. We have failed to save discounting!&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=823 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
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&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;n-step Differential
Semi-gradient Sarsa&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.55pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In order to generalize to &lt;span class=afff7&gt;n-step&lt;/span&gt;
bootstrapping, we need an n-step version of the TD error. We begin by generalizing
the n-step return (7.4) to its differential form, with function approximation:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.5pt;
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0cm;line-height:11.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t:t+n = &lt;sup&gt;R&lt;/sup&gt;t+i &lt;sup&gt;-&lt;/sup&gt;-Rt+i
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class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\B3\F3&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+n + ^(St+n, &lt;sup&gt;A&lt;/sup&gt;t+n, &lt;sup&gt;w&lt;/sup&gt;t+n-i),&lt;/span&gt;&lt;/p&gt;

&lt;p class=153 align=right style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:
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style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=151&gt;&lt;span lang=EN-US&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
class=1595pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span
class=151&gt;&lt;span lang=EN-US&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span class=1595pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:16.35pt;
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lang=EN-US&gt;where R is an estimate of r(n), n &amp;gt; 1, and t + n &amp;lt; T. If t + n
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11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+n == Gt as
usual. The n-step TD error is then&lt;/span&gt;&lt;/p&gt;

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  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(10.13)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=21b&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;5&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t
= &lt;sup&gt;G&lt;/sup&gt;t:t+n &lt;sup&gt;-&lt;/sup&gt; 3&lt;sup&gt;(S&lt;/sup&gt;t, &lt;sup&gt;A&lt;/sup&gt;t, &lt;sup&gt;w)&lt;/sup&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;after which we can apply our usual semi-gradient Sarsa update
(10.11). Pseudocode for the complete algorithm is given in the box.&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.25pt;
margin-left:16.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
black&#39;&gt;&lt;span class=515&gt;&lt;span lang=EN-US&gt;Differential semi-gradient &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang0&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
class=515&gt;&lt;span lang=EN-US&gt;-step Sarsa for estimating &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang0&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;q &lt;/span&gt;&lt;/span&gt;&lt;span
class=515&gt;&lt;span lang=EN-US&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang0&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span class=515&gt;&lt;span
lang=EN-US&gt;^, or &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang0&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;q &lt;/span&gt;&lt;/span&gt;&lt;span class=515&gt;&lt;span lang=EN-US&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang0&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span
class=515&gt;&lt;span lang=EN-US&gt;^&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:16.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 320.1pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Input: a
differentiable function q : &lt;span class=afff7&gt;S&lt;/span&gt; x A x R&lt;sup&gt;m&lt;/sup&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;R,
a policy n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:16.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize value-function weights &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;G R&lt;sup&gt;m&lt;/sup&gt;
arbitrarily (e.g., &lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;= &lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:81.0pt;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
average-reward estimate R G R arbitrarily (e.g., R = 0) Parameters: step size
a, ^ &amp;gt; 0, a positive integer n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.0pt;
margin-left:16.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;All store and access operations (St, At, and Rt) can take their
index mod n&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:243.0pt;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
and store So and Ao For t = 0,1, &lt;span class=1pt6&gt;2,...:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Take action At&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:36.0pt;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
110.4pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Observe and store the next
reward as Rt+i and the next state as St+i Select and store an action At+i &lt;/span&gt;&lt;span
class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;n(-|St+i), or e-greedy wrt q(So, \A1\F6, &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) &lt;/span&gt;&lt;span
class=CenturySchoolbookf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;\A1\AA t - n + &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;span
class=CenturySchoolbookf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;is the time whose estimate is being updated)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;If &lt;/span&gt;&lt;span
class=CenturySchoolbookf2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&amp;gt; 0:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-indent:0cm;line-height:12.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=9pt8&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;5&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;
\A1\AA&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span class=12pt3&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;sub&gt;&lt;span
lang=EN-US&gt;=&lt;/span&gt;&lt;/sub&gt;&lt;span lang=EN-US&gt;+&lt;sub&gt;J&lt;/sub&gt;-Vi&lt;sup&gt;(R&lt;/sup&gt;i &lt;sup&gt;-
R)&lt;/sup&gt; + &lt;sup&gt;q(S&lt;/sup&gt;T +n, &lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+n, &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;) - q(S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;r&lt;sup&gt;, &lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;sup&gt;, &lt;/sup&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.65pt;
margin-left:44.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;R \A1\AA R + ^5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+
a5Vq(S&lt;sub&gt;r&lt;/sub&gt;, A&lt;sub&gt;r&lt;/sub&gt;, &lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=823 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:37.0pt;text-indent:-36.0pt;line-height:13.0pt;mso-line-height-rule:
exactly;mso-pagination:lines-together;page-break-after:avoid;mso-list:l20 level1 lfo43;
tab-stops:45.65pt;background:transparent&#39;&gt;&lt;a name=bookmark168&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;10.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Summary&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;In this chapter we have extended the ideas of
parameterized function approximation and semi-gradient descent, introduced in
the previous chapter, to control. The ex&amp;shy;tension is immediate for the episodic
case, but for the continuing case we have to introduce a whole new problem
formulation based on maximizing the &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;average reward &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;per time step. Surprisingly, the discounted
formulation cannot be carried over to control in the presence of
approximations. In the approximate case most policies cannot be represented by
a value function. The arbitrary policies that remain need to be ranked, and the
scalar average reward r(n) provides an effective way to do this.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;The average reward formulation involves new &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;differential&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; versions of value func&amp;shy;tions, Bellman equations,
and TD errors, but all of these parallel the old ones, and the conceptual
changes are small. There is also a new parallel set of differential algorithms
for the average-reward case. We illustrate this by developing differential
versions of semi-gradient n-step Sarsa.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=823 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.05pt;
margin-left:37.0pt;text-indent:-36.0pt;line-height:13.0pt;mso-line-height-rule:
exactly;mso-pagination:lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark169&gt;&lt;span lang=EN-US&gt;Bibliographical and Historical Remarks&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:37.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l29 level1 lfo46;
tab-stops:36.75pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;10.1&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Semi-gradient Sarsa with function approximation was
first explored by Rum- mery and Niranjan (1994). Linear semi-gradient Sarsa
with e-greedy action selection does not converge in the usual sense, but does
enter a bounded region near the best solution (Gordon, 1995). Precup and
Perkins (2003) showed convergence in a differentiable action selection setting.
See also Perkins and Pendrith (2002) and Melo, Meyn, and Ribiero (2008). The
mountain-car example is based on a similar task studied by Moore (1990), but
the exact form used here is from Sutton (1996).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:37.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l29 level1 lfo46;
tab-stops:36.75pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;10.2&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Episodic n-step semi-gradient Sarsa is based on the
forward Sarsa&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=43MingLiU&gt;&lt;span style=&#39;font-size:5.5pt;
mso-ansi-language:ZH-TW;font-weight:normal&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;)&lt;/span&gt;&lt;span lang=EN-US&gt;algo&amp;shy;rithm
of van Seijen (2016). The empirical results shown here are new to the second
edition of this text.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:37.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l29 level1 lfo46;
tab-stops:36.75pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;10.3&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;The average-reward formulation has been described
for dynamic program&amp;shy;ming (e.g., Puterman, 1994) and from the point of view of
reinforcement learning (Mahadevan, 1996; Tadepalli and Ok, 1994; Bertsekas and
Tsitiklis, 1996; Tsitsiklis and Van Roy, 1999). The algorithm described here is
the on- policy analog of the \A1\B0R-learning\A1\B1 algorithm introduced by Schwartz
(1993). The name R-learning was probably meant to be the alphabetic successor
to Q-learning, but we prefer to think of it as a reference to the learning of
differ&amp;shy;ential or &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;relative&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; values. The access-control queuing example was
suggested by the work of Carlstrom and Nordstrom (1997).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:11.8pt;
margin-left:37.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l29 level1 lfo46;
tab-stops:36.75pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;10.4&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;The recognition of the limitations of discounting as
a formulation of the rein&amp;shy;forcement learning problem with function
approximation became apparent to the authors shortly after the publication of
the first edition of this text. The second edition of this book may be the
first publication of the demonstration of the futility of discounting in the
box on page 265.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:36.0pt;text-indent:-35.0pt;line-height:13.7pt;
mso-line-height-rule:exactly;mso-list:l29 level1 lfo46;tab-stops:36.5pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;10.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;The
differential version of n-step semi-gradient Sarsa is new to this text and has
not been significantly studied.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection240&gt;

&lt;p class=8a style=&#39;margin-bottom:23.35pt;line-height:19.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=84&gt;&lt;span lang=EN-US&gt;Chapter 11&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=522 style=&#39;margin-top:0cm;margin-right:102.0pt;margin-bottom:36.85pt;
margin-left:0cm;line-height:29.5pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark170&gt;&lt;span class=520&gt;&lt;span lang=EN-US&gt;Off-policy Methods with
Approximation&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;This book has treated on-policy and off-policy
learning methods since Chapter 5 primarily as two alternative ways of handling
the conflict between exploitation and exploration inherent in learning forms of
generalized policy iteration. The two chap&amp;shy;ters preceding this have treated the
&lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
font-weight:normal&#39;&gt;on&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;-policy
case with function approximation, and in this chapter we treat the &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;off&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;-policy case with function approximation. The exten&amp;shy;sion
to function approximation turns out to be significantly different and harder
for off-policy learning than it is for on-policy learning. The tabular
off-policy methods developed in Chapters &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; and 7 readily extend to semi-gradient algorithms,
but these algorithms do not converge nearly as robustly as they do under
on-policy training. In this chapter we explore the convergence problems, take a
closer look at the theory of linear function approximation, introduce a notion
of learnability, and then discuss new algorithms with stronger convergence
guarantees for the off-policy case.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Recall that in off-policy
learning we seek to learn a value function for a &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;target
policy&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt; n, given data due to a
different &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt;font-weight:normal&#39;&gt;behavior policy&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt; b. In the prediction case, both policies are static and given, and
we seek to learn either state values v &lt;/span&gt;&lt;/span&gt;&lt;span class=43MingLiU0&gt;&lt;span
style=&#39;font-size:4.5pt;font-weight:normal&#39;&gt;\B0\D1&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;or action values q &lt;/span&gt;&lt;/span&gt;&lt;span
class=43MingLiU0&gt;&lt;span style=&#39;font-size:4.5pt;font-weight:normal&#39;&gt;\B0\D1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;q^. In
the control case, action values are learned, and both policies typically change
during learning\A1\AAn being the greedy policy with respect to q, and b being
something more exploratory such as the e-greedy policy with respect to q.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;The challenge of off-policy
learning can be divided into two parts, one that arises in the tabular case and
one that arises only with function approximation. The first part of the
challenge has to do with the target of the learning update, and the second part
has to do with the distribution of the updates. The techniques related to
importance sampling and rejection sampling developed in Chapters &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; and 7 deal with the first part; these may increase
variance but are needed in all successful algorithms, tabular and approximate.
The extension of these techniques to function approximation are quickly dealt
with in the first section of this chapter.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Something more is needed for the second part of the
challenge of off-policy learning with function approximation because the
distribution of updates in the off-policy&lt;br clear=all style=&#39;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;span class=ac&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;case is
not according to the on-policy distribution. The on-policy distribution is
important to the stability of semi-gradient methods. Two general approaches
have been explored to deal with this. One is to use importance sampling methods
again, this time to warp the update distribution back to the on-policy
distribution, so that semi-gradient methods are guaranteed to converge (in the
linear case). The other is to develop true gradient methods that do not rely on
any special distribution for stability. We present methods based on both
approaches. This is a cutting- edge research area, and it is not clear which of
these approaches is most effective in practice.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=823 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l6 level1 lfo47;
tab-stops:44.65pt;background:transparent&#39;&gt;&lt;a name=bookmark171&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;11.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Semi-gradient Methods&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;We begin by describing how the methods
developed in earlier chapters for the off- policy case extend readily to
function approximation as semi-gradient methods. These methods address the
first part of the challenge of off-policy learning but not the second part.
Although these methods may diverge in some cases, and in that sense are not
sound, they are still often successfully used. Remember that these methods &lt;span
class=afff7&gt;are&lt;/span&gt; guaranteed stable and asymptotically unbiased for the
tabular case, which corresponds to a special case of function approximation. So
it may still be possible to combine them with feature selection methods in such
a way that the combined system could be assured stable. In any event, these
methods are simple and thus a good place to start.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In Chapter 7 we described a
variety of tabular off-policy algorithms. To convert them to semi-gradient
form, we simply replace the update to the array (V or Q) to an update to the
weight vector (&lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;), using the approximate value function (v or q)&lt;/span&gt;&lt;/p&gt;

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   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
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    &lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:3.0pt;margin-bottom:
    6.35pt;margin-left:0cm;text-align:justify;text-justify:inter-ideograph;
    text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:
    transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;
    letter-spacing:0pt&#39;&gt;and its gradient. Many of ratio:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 align=right style=&#39;margin-right:3.0pt;text-align:right;
    text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:
    transparent&#39;&gt;&lt;span class=MingLiUffa&gt;&lt;span style=&#39;letter-spacing:0pt;
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    class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;\A1\AA
    n(At|St)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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    line-height:9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
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    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt; = &lt;/span&gt;&lt;/span&gt;&lt;span
    class=-1ptExact0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:
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    style=&#39;font-size:9.0pt;letter-spacing:-2.0pt&#39;&gt;\A3\BA&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
    class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt; =
    b(At|St).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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    transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;these algorithms use the per-step importance
sampling&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-top:0cm;margin-right:1.0pt;
margin-bottom:13.75pt;margin-left:0cm;text-align:right;text-indent:0cm;
line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;state-value algorithm is semi-gradient off-policy TD(0), which is
just like the corresponding on-policy algorithm (page 217) except for the
addition of pt:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.25pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 400.1pt;
background:transparent&#39;&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;= &lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t + apt^t&lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;v(St ,&lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t),&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where 5&lt;sub&gt;t&lt;/sub&gt; is defined appropriately depending on whether
the problem is episodic and discounted, or continuing and undiscounted using
average reward:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.65pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 400.1pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;^t = Rt+i + &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;v(St+i,&lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t) - v(St,&lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t), or&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(episodic)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:19.2pt;mso-line-height-rule:exactly;
tab-stops:right 400.1pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;^t = Rt+i - Rt
+ v(St+i,&lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t) - -&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(St,&lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t).&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(continuing)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:19.2pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;For action values, the one-step algorithm is
semi-gradient Expected Sarsa:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(11.3)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;wt+i = wt + a^tVq(St, At, wt), with&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:.1pt;
margin-left:27.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 400.3pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;^t == Rt+i + ^^n(a|St+i)q(St+i,a, wt)
- q(St, At, wt), or&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(episodic)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.55pt;
margin-left:102.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:.1pt;
margin-left:27.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;^t = Rt+i - Rt + ^ n(a|St+i)q(St+i,a, wt) - q(St, At, wt).
(continuing)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.25pt;
margin-left:120.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:3.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Note that this algorithm does not use importance
sampling. In the tabular case it is clear that this is appropriate because the
only sampled action is At, and in learning its value we do not have to consider
any other actions. With function approximation it is less clear because we
might want to weight different state-action pairs differently once they all
contribute to the same overall approximation. Proper resolution of this issue
awaits a more thorough understanding of the theory of function approximation in
reinforcement learning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.55pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In the multi-step generalizations of these algorithms, both the
state-value and action-value algorithms involve importance sampling. For
example, the n-step ver&amp;shy;sion of semi-gradient Expected Sarsa is&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.95pt;
margin-left:27.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;wt+n == wt+n-i + apt+i &amp;#8226; &amp;#8226; &amp;#8226; pt+n-i [Gt&lt;/span&gt;&lt;span
class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+n - q(St, At, wt+n-i)] Vq(St, At, wt+n-i)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-right:1.0pt;text-align:right;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;(11.4)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:22.55pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;with&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:27.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:22.55pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t:t+n
= &lt;sup&gt;R&lt;/sup&gt;t+i + &amp;#8226; &amp;#8226; &amp;#8226; + &lt;/span&gt;&lt;span class=9pt8&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt; n iR&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t+n + &lt;/span&gt;&lt;span class=9pt8&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;nq(S&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t+ &lt;sub&gt;n&lt;/sub&gt;, At+n, wt+n-i), or (episodic)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:27.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:22.55pt;mso-line-height-rule:exactly;
tab-stops:dashed 147.5pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Gt&lt;/span&gt;&lt;span
class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+n = Rt+i - Rt +&lt;span style=&#39;mso-tab-count:1 dashed&#39;&gt;----- &lt;/span&gt;+
Rt+n - Rt+n-i + q(St+n, At+n, wt+n-i), (continuing)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:3.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;where here we are being slightly informal in our
treatment of episodes\A1\AF end. In the first equation, the pts for t &amp;gt; T should
be taken to be 1, and &lt;span class=-2pt1&gt;Gt&lt;/span&gt;&lt;/span&gt;&lt;span class=-2pt1&gt;\A3\BA&lt;span
lang=EN-US&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; should be taken to be Gt if t + n
&amp;gt; T.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:7.55pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Recall that we also presented in Chapter 7 on off-policy algorithm
that does not involve importance sampling at all: the n-step tree-backup
algorithm. Here is its semi-gradient version:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.6pt;
margin-left:27.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;wt+n = wt+n-i + a [Gt&lt;/span&gt;&lt;span class=MingLiUff7&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+n \A1\AA q(St, At, wt+n-i)] Vq(St, At, wt+n-i), with (11.5)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:159.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:right 220.7pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;t+n-i&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;span
class=afff7&gt;k&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.4pt;
margin-left:27.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:right 400.3pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Gt&lt;/span&gt;&lt;span class=MingLiUff7&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+n ^ q(St, At, wt-i) + L ^ n &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;n(Ai|Si),&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.25pt;
margin-left:159.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 220.7pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;k=t&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;i=t+i&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;with ^t as defined on the previous page for Expected Sarsa. We also
defined in Chapter 7 an algorithm that unifies all action-value algorithms:
n-step Q(a). We leave the semi-gradient form of that algorithm, and also of the
n-step state-value algorithm, as exercises to the reader.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 400.3pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 11.1 Convert the equation of
n-step off-policy TD (7.7) to semi-gradient form. Give accompanying definitions
of the return for both the episodic and contin&amp;shy;uing cases.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:3.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 400.3pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;^Exercise 11.2 Convert
the equations of n-step Q(a) (7.9, 7.14, 7.16, and 7.17) to semi-gradient form.
Give definitions that cover both the episodic and continuing cases.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=823 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l6 level1 lfo47;
tab-stops:44.4pt;background:transparent&#39;&gt;&lt;a name=bookmark172&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;11.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Examples of Off-policy
Divergence&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In this section we begin to discuss
the second part of the challenge of off-policy learning with function
approximation\A1\AAthat the distribution of updates does not match the on-policy
distribution. We describe some instructive counterexamples to off-policy
learning\A1\AAcases where semi-gradient and other simple algorithms are unstable and
diverge.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;To establish intuitions, it is best to consider first a very simple
example. Suppose, perhaps as part of a larger MDP, there are two states whose
estimated values are of the functional form &lt;span class=afff7&gt;w&lt;/span&gt; and &lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;w, where the parameter vector &lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;consists of only a single component w. This occurs under linear
function approximation with single&amp;shy;component feature vectors for the two states
of 1 and 2 respectively. In the first state, there is only one action available,
and it results deterministically in a transition to the second state with a
reward of &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Suppose initially w = 10. The
transition will then be from a state of estimated value 10 to a state of
estimated value 20. It will look like a good transition, and w will be
increased to raise the first state\A1\AFs estimated value. If &lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; is nearly 1, then the TD error will be nearly &lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, and, if a = &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, then w will be increased to nearly &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; in trying
to reduce the TD error. However, the second state\A1\AFs estimated value will also
be increased, to nearly 22. If the transition occurs again, then it will be
from a state of estimated value d1 to a state of estimated value f&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;22, for a TD error of d1\A1\AAlarger, not smaller than before. It will
look even more like the first state is undervalued, and its value will be
increased again, this time to d2.1. This looks bad, and in fact with further
updates w will diverge to infinity. To see this definitively we have to look
more carefully at the sequence of updates. The TD error on a transition between
the two states is&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-indent:27.0pt;line-height:21.85pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;5t = Rt+i
+ Yv(St+i,&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t) &lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;v(St,&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t) = &lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;72&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;wt &lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;wt = &lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(27&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)wt, and the off-policy
semi-gradient TD(0) update (from (11.2)) is&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:7.25pt;text-indent:27.0pt;line-height:
9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;wt+i
= wt + apt5t&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;v(St,wt) = wt + a &lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;\A1\F6 &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;\A1\F6 &lt;/span&gt;&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;(27&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)wt &lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;\A1\F6 &lt;/span&gt;&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = &lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + a(&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;? &lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;))wt.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Note that the importance sampling
ratio, pt, is 1 on this transition because there is only one action available
from the the first state, so its probabilities of being taken under the target
and behavior policies must both be 1. In the final update above, the new
parameter is the old parameter times a scalar constant, 1 + a(2Y &lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;1). If this constant is greater than &lt;/span&gt;&lt;span class=9pt8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, then the
system is unstable and w will go to positive or negative infinity depending on
its initial value. Here this constant is greater than 1 whenever &lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &amp;gt; 0.5. Note that stability does not depend on the specific step
size, as long as a &amp;gt; 0. Smaller or larger step sizes would affect the rate
at which w goes to infinity, but not whether it goes there or not.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Key to this example is that
the one transition occurs repeatedly without w being updated on other
transitions. This is possible under off-policy training because&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection241&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;the behavior policy might select actions on those
other transitions which the target policy never would. For these transitions,
pt would be zero and no update would be made. Under on-policy training,
however, pt is always one. Each time there is a transition from the &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; state to the &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;w state, increasing w, there would also have to be a
transition out of the 2w state. That transition would reduce w, unless is was
to a state whose value was higher (because &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; &amp;lt; &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;) than &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;w, and then that state would have to be followed by
a state of even higher value, or else it would be reduced. Each state can
support the one before only by creating a higher expectation. Eventually the
piper must be paid. In the on-policy case the promise of future reward must be
kept and the system is kept in check. But in the off-policy case, a promise can
be made and then, after taking an action that the target policy never would,
forgotten and forgiven.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;This simple example communicates
much of the reason why off-policy training can lead to divergence, but it is
not completely convincing because it is not complete\A1\AAit is just a fragment of a
complete MDP. Can there really be a complete system with instability? The
simplest complete example of divergence is &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;Baird&#39;s counterexample&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;. Consider the episodic seven-state, two-action MDP
shown in Figure 11.1. The &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;dashed &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;action
takes the system to one of the six upper states with equal probability, whereas
the &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;solid
&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;action takes the system to the
seventh state. The behavior policy &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;b&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; selects the two actions with probabilities | and &amp;#8226;,
so that the next-state distribution under it is uniform (the same for all
nonterminal states), which is also the starting distribution for each episode.
The target policy n always takes the solid action, and so the on- policy
distribution is concentrated in the seventh state. The reward is zero on all
transitions. The discount rate is &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; = 0.99.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
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&lt;/v:shape&gt;&lt;v:shape id=&#34;Text_x0020_Box_x0020_396&#34; o:spid=&#34;_x0000_s1324&#34; type=&#34;#_x0000_t202&#34;
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 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;
    line-height:11.75pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=430ptExact&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:
    0pt&#39;&gt;Figure 11.1: Baird\A1\AFs counterexample. The approximate state-value
    function for this Markov process is of the form shown by the linear
    expressions inside each state. The solid action usually results in the
    seventh state, and the dashed action usually results in one of the other
    six states, each with equal probability. The reward is always zero.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Consider estimating the state-value
under the linear parameterization indicated by the expression shown in each
state circle. For example, the estimated value of&lt;br clear=all
style=&#39;page-break-before:always&#39;&gt;
the first state is &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;+ w&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;, where the subscript corresponds to the component of the overall
weight vector &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang2&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;8&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;; this corresponds to a feature vector for the first
state being &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;(1) =
(2, 0, 0, 0, 0, 0, 0, 1)&lt;sup&gt;T&lt;/sup&gt;. The reward is zero on all transitions, so
the true value function is v&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;(s) = &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, for all s, which can be exactly approximated if &lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;. In fact, there are many solutions, as there are more components to
the weight vector (&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;) than there are nonterminal states (7). Moreover, the set of
feature vectors, &lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;{&lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;(s) : s &lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;}&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;, is a linearly
independent set. In all these ways this task seems a favorable case for linear
function approximation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.55pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
12.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;If we apply semi-gradient TD(0) to this problem
(11.2), then the weights diverge to infinity, as shown in Figure 11.2 (left).
The instability occurs for any positive step size, no matter how small. In
fact, it even occurs if we do a DP-style expected backup instead of a learning
backup, as shown in Figure 11.2 (right). That is, if the weight vector, &lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;, is updated in sweeps
through the state space, performing a synchronous, semi-gradient backup at
every state, s, using the DP (full backup) target:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-bottom:18.85pt;text-align:justify;text-justify:inter-ideograph;
text-indent:12.0pt;line-height:11.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt;font-weight:normal&#39;&gt;+i =&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;k &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
class=43MingLiU1&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;\B6\FE&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;(E&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;[R&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;v(S&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;| &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;= s] &lt;/span&gt;&lt;/span&gt;&lt;span class=43CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;v(s,&lt;/span&gt;&lt;/span&gt;&lt;span class=4395pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;v(s,&lt;/span&gt;&lt;/span&gt;&lt;span
class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;). (11.7)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;In this case, there is no randomness and no
asynchrony. Each state is updated exactly once per sweep as in a classical DP
backup. The method is entirely conventional except in its use of semi-gradient
function approximation. Yet still the system is unstable.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.25pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
12.0pt;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;v:shape
 id=&#34;Picture_x0020_395&#34; o:spid=&#34;_x0000_s1323&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image117&#34;
 style=&#39;position:absolute;left:0;text-align:left;margin-left:11.05pt;
 margin-top:47.5pt;width:183.35pt;height:214.1pt;z-index:251867946;
 visibility:visible;mso-wrap-style:square;mso-width-percent:0;
 mso-height-percent:0;mso-wrap-distance-left:5pt;mso-wrap-distance-top:0;
 mso-wrap-distance-right:5pt;mso-wrap-distance-bottom:0;
 mso-position-horizontal:absolute;mso-position-horizontal-relative:margin;
 mso-position-vertical:absolute;mso-position-vertical-relative:text;
 mso-width-percent:0;mso-height-percent:0;mso-width-relative:page;
 mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image116.jpg&#34;
  o:title=&#34;image117&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;If we alter just the distribution of
DP backups in Baird\A1\AFs counterexample, from the uniform distribution to the
on-policy distribution (which generally requires asyn-&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:214.1pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:right;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=285 align=right&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=285 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=right style=&#39;text-align:right;mso-element:frame;
  mso-element-frame-height:214.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:right;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_42&#34; o:spid=&#34;_x0000_i1079&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image118&#34;
   style=&#39;width:188.25pt;height:213.75pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image117.jpg&#34;
    o:title=&#34;image118&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:9.85pt;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Figure 11.2: Demonstration of instability on Baird\A1\AFs
counterexample. Shown are the evolu&amp;shy;tion of the components of the parameter
vector &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt;font-weight:normal&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;of
the two semi-gradient algorithms. The step size was a = &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;01&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, and the initial weights were &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;= (&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;)&lt;sup&gt;T&lt;/sup&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br
clear=all style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:15.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;chronous updating), then convergence is guaranteed
to a solution with error bounded by (9.13). This example is striking because
the TD and DP methods used are ar&amp;shy;guably the simplest and best-understood
bootstrapping methods, and the linear, semi-descent method used is arguably the
simplest and best-understood kind of function approximation. The example shows
that even the simplest combination of bootstrapping and function approximation
can be unstable if the backups are not done according to the on-policy
distribution.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:15.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;There are also counterexamples
similar to Baird\A1\AFs showing divergence for Q-learning. This is cause for concern
because otherwise Q-learning has the best convergence guarantees of all control
methods. Considerable effort has gone into trying to find a remedy to this
problem or to obtain some weaker, but still workable, guarantee. For example,
it may be possible to guarantee convergence of Q-learning as long as the
behavior policy (the policy used to select actions) is sufficiently close to
the esti&amp;shy;mation policy (the policy used in GPI), for example, when it is the
e-greedy policy. To the best of our knowledge, Q-learning has never been found
to diverge in this case, but there has been no theoretical analysis. In the
rest of this section we present several other ideas that have been explored.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:15.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Suppose that instead of taking
just a step toward the expected one-step return on each iteration, as in
Baird\A1\AFs counterexample, we actually change the value function all the way to
the best, least-squares approximation. Would this solve the instability
problem? Of course it would if the feature vectors, {x(s) : &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; G S}, formed a linearly independent set, as they do
in Baird\A1\AFs counterexample, because then exact approx&amp;shy;imation is possible on
each iteration and the method reduces to standard tabular DP. But of course the
point here is to consider the case when an exact solution is &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;not&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; possible. In this case stability is not guaranteed
even when forming the best approximation at each iteration, as shown by the
counterexample in the box on the next page.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:15.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Another way to try to prevent
instability is to use special methods for function approximation. In
particular, stability is guaranteed for function approximation methods that do
not extrapolate from the observed targets. These methods, called &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;averagers&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, include nearest neighbor methods and local
weighted regression, but not popular methods such as tile coding and
backpropagation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection242&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span class=435&gt;&lt;span
lang=EN-US&gt;Tsitsiklis and Van Roy\A1\AFs Counterexample to DP policy evaluation with
least- squares linear function approximation&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.3pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;The simplest full counterexample to the least-squares idea is the
w-to-2w ex&amp;shy;ample (from earlier in this section) extended with a terminal state:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:85.7pt;mso-element-frame-height:
76.55pt;mso-element-frame-hspace:141.7pt;mso-element-wrap:no-wrap-beside;
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&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

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  &lt;td valign=top align=left height=14 style=&#39;padding-top:0cm;padding-right:
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  &lt;p class=325 style=&#39;line-height:10.5pt;mso-line-height-rule:exactly;
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&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:19.2pt;mso-element-frame-height:
23.35pt;mso-element-frame-hspace:131.4pt;mso-element-wrap:no-wrap-beside;
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&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=201 height=31&gt;
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  &lt;td valign=top align=left height=31 style=&#39;padding-top:0cm;padding-right:
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&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:3.4pt;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;As before, the estimated value of the first state is
w, and the estimated value of the second state is 2w. The reward is zero on all
transitions, so the true values are zero at both states, which is exactly
representable with w = 0. If we set wk+i at each step so as to minimize the
MSVE between the estimated value and the expected one-step return, then we have&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
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&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.0pt;
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class=432&gt;&lt;span lang=EN-US&gt; &amp;gt; and wo = 0.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=823 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:26.0pt;text-indent:-26.0pt;line-height:13.0pt;mso-line-height-rule:
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lang=EN-US&gt;The Deadly Triad&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;Our discussion so far can be summarized by saying that the danger of
instability and divergence arises whenever we combine all of the following
three elements, making up what we call &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;the deadly triad&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.0pt;
margin-left:26.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
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class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Function approximation &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;A powerful, scalable way of generalizing from a
state space much larger than the memory and computational resources (e.g.,
linear function approximation or artificial neural networks).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.0pt;
margin-left:26.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
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class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Bootstrapping &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Update targets that include existing estimates
rather than rely&amp;shy;ing exclusively on actual rewards and complete returns (e.g.,
as in dynamic programming or TD learning).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:26.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:-26.0pt;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=4395pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;Off-policy training &lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Training
on a distribution of transitions other than that pro&amp;shy;duced by the target
policy. Sweeping through the state space and updating all states uniformly, as
in dynamic programming, does not respect the target policy and is an example of
off-policy training.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection245&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;line-height:
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lang=EN-US&gt;In particular, note that the danger is &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;not&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;due to control, or to generalized policy iteration.
Those cases are more complex to analyze, but the instability arises in the
simpler prediction case whenever it includes all three elements of the deadly
triad. The danger is also &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;not&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;due to learning or to the uncertainties involved in
estimation, as it occurs just as strongly in planning methods, such as dynamic
programming, in which the environment is completely known.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Any two elements of the deadly triad can be present
without the third without creating instability. It is natural, then, to go
through the three and see if there is any one that can be given up.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Of the three, &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;function approximation&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;most clearly can not be given up. We need methods
that scale to large problems and to great expressive power. We need at least
linear function approximation with many features and parameters. State
aggregation or non-parametric methods whose complexity grows with data are too
weak or too expensive. Least-squares methods such as LSTD are of quadratic
complexity and are too expensive.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Doing without &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;bootstrapping&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;is possible, at the cost of computational and data
efficiency. Perhaps most important are the losses in computational efficiency.
Monte Carlo (non-bootstrapping) methods require memory to save everything that
happens between making each prediction and obtaining the final return, and all
their com&amp;shy;putation is done once the final return is obtained. The cost of these
computational issues is not apparent on serial von Neumann computers, but would
be on specialized hardware. With bootstrapping and eligibility traces (Chapter
12), data can be dealt with when and where it is generated, then need never be
used again. The savings in communication and memory made possible by
bootstrapping are great.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;The losses in data efficiency by giving up &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;bootstrapping&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;are also significant. We have seen this repeatedly,
such as in Chapters 7 (Figure 7.2) and 9 (Figure 9.2), where some degree of
bootstrapping performed much better than Monte Carlo methods on the random-walk
prediction task, and in Chapter 10 where the same was seen on the Mountain-Car
control task (Figure 10.4). Many other problems show much faster learning with
bootstrapping. Figure 12.14 shows a few examples on other small problems.
Bootstrapping allows learning to take advantage of the state prop&amp;shy;erty, the
ability to recognize a state upon returning to it. On problems where the state
representation is poor and causes poor generalization, bootstrapping can impair
learning. One example of this seems to be Tetris (see f^imsek, Algorta, and
Kothiyal, 2016). A poor state representation can also result in bias; this in
the reason for the poorer bound on the asymptotic approximation quality of
bootstrapping methods (Equation 9.13). On balance, a bootstrapping ability has
to be considered extremely valuable. One may sometimes choose not to use it by
selecting long backups (or a large bootstrapping parameter&lt;/span&gt;&lt;/span&gt;&lt;span
class=43MingLiU0&gt;&lt;span lang=EN-US style=&#39;font-size:4.5pt;mso-ansi-language:
EN-US;font-weight:normal&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=43MingLiU0&gt;&lt;span
style=&#39;font-size:4.5pt;font-weight:normal&#39;&gt;\C8\EB\B0\D1&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;1; see Chapter 12) but
oftimes bootstrapping greatly increases efficiency. It&#39;s an ability that we
would very much like to keep in our toolkit.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;Finally, there is &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;off-policy
learning&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;; can we give it up?
On-policy methods are often adequate. For model-free reinforcement learning,
one can simply use Sarsa rather than Q-learning. Off-policy methods free
behavior from the target policy.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:21.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;This could be considered an appealing convenience
but not a necessity. However, off-policy learning &lt;span class=afff7&gt;is
essential&lt;/span&gt; to other anticipated use cases, cases that we have not yet
mentioned in this book but may be important to the larger goal of creating a
powerful intelligent agent.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:21.0pt;margin-bottom:30.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;In these use cases, the agent learns not just a single value
function and single policy, but large numbers of them in parallel. There is
extensive psychological evidence that people and animals learn to predict many
different sensory events, not just rewards. We can be surprised by unusual
events, and correct our predictions about them, even if they are of neutral
valence. This kind of prediction presumably underlies predictive models of the
world such as are used in planning. We predict what we will see after eye
movements, how long it will take to walk home, the probability of making a jump
shot in basketball, and the satisfaction we will get from taking on a new
project. In all these cases, the events we would like to predict depend on our
acting in a certain way. To learn them all, in parallel, requires learning from
the one stream of experience. There are many target policies, and thus the one
behavior policy can not equal all of them. Yet parallel learning is
conceptually possible, because the behavior policy may overlap in part with
many of the target policies. To take full advantage of this requires off-policy
learning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=823 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-pagination:lines-together;page-break-after:avoid;mso-list:l6 level1 lfo47;
tab-stops:45.4pt;background:transparent&#39;&gt;&lt;a name=bookmark174&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;11.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Linear Value-function Geometry&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:21.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;To better understand the stability challenge of
off-policy learning, it is helpful to think about value function approximation
more abstractly. We can imagine the space of all possible state-value
functions, of all functions from states to real num&amp;shy;bers v : S R. Most of these
value functions do not correspond to any policy. More important for our
purposes is that most are not representable by the function approximator, which
by design has far fewer parameters than there are states.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:21.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Given an enumeration of the state space S = {s&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, s&lt;/span&gt;&lt;span class=75pt3&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=afff7&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=afff7&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\AD,&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;|g|&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;}, any value function v corresponds to a vector listing the value of
each state in order [v(s&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;), v(s&lt;/span&gt;&lt;span
class=75pt3&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffa&gt;&lt;span lang=EN-US style=&#39;mso-ansi-language:EN-US&#39;&gt;),&lt;/span&gt;&lt;span
lang=ZH-TW&gt;\A1\AD,&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;v(s&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;|&lt;sub&gt;S&lt;/sub&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)]&lt;/span&gt;&lt;span class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. This vector
representation of a value function has as many components as there are states.
In most cases where we want to use function approximation that would be far too
many to represent the vector explicitly. Nevertheless, the idea of this vector
is conceptually useful. In the following, we treat a value function and its
vector representation interchangably.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:21.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;To develop intuitions, consider the case with
three states S = {si, s&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, s&lt;/span&gt;&lt;span
class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;3&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;} and two parameters &lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span
lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= (wi, w&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;span
class=CenturySchoolbookf3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. We can then view all value functions/vectors as points in a
three-dimensional space. The parameters provide an alternative coordinate
system over a two-dimensional subspace. For any pair of numbers (x, y), we can
set wi = x and w&lt;/span&gt;&lt;span class=9pt8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; = &lt;span class=afff7&gt;y&lt;/span&gt; to produce a parameter vector\A1\AAa point
in the two-dimensional subspace\A1\AAand thus a complete value function vw lying
within the subspace and that assigns values to all three states. In general the
subspace of representable functions could be curved and twisted, even not
one-to-one, but in the case of &lt;span class=afff7&gt;linear&lt;/span&gt; value- function
approximation it is a simple plane, as suggested by Figure 11.3.&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:202.3pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=270 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=270 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:202.3pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_44&#34; o:spid=&#34;_x0000_i1077&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image120&#34;
   style=&#39;width:387pt;height:203.25pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image119.jpg&#34;
    o:title=&#34;image120&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=8b style=&#39;background:transparent;mso-element:frame;mso-element-frame-height:
  202.3pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span class=83&gt;&lt;span lang=EN-US&gt;Figure 11.3: The geometry of linear
  value-function approximation. Shown as a plane is the subspace of all
  functions representable by the function approximator. The three-dimensional
  space above and below it is the much larger space of all value functions
  (functions from S to R). The true value function is in this larger space and
  projects down to its best approximation in the value error (VE) sense. The
  best approximators in the Bellman error (BE) and projected Bellman error
  (PBE) senses are different and are also shown in the lower right. (VE, BE,
  and PBE are all treated as the corresponding vectors in this figure.) The
  Bellman operator takes a value function in the plane to one outside, which
  can then be projected back. If you could iteratively apply the Bellman
  operator outside the space (shown in gray above) you would reach the true
  value function, as in conventional DP.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:57.15pt;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;Now consider a single fixed
policy n. We assume that its true value function, Vn, is too complex to be
represented exactly as an approximation. Thus v^ is not in the subspace; in the
figure it is depicted as being above the planar subspace of representable
functions.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;If Vn can not be represented
exactly, what representable value function is closest to it? This turns out to
be a subtle question, with multiple answers. To begin, we need a measure of the
distance between two value functions. Given two value functions&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l53 level1 lfo44;
tab-stops:6.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal;mso-bidi-font-weight:bold&#39;&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;i and V&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;, we can talk about the vector difference between
them, v = Vi - V&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;. If v is small, then the two value functions are close to each
other. But how are we to measure the size of this difference vector? The
conventional Euclidean norm is not appropriate because, as discussed in Section
9.2, some states are more important than others because they occur more
frequently or because we are more interested in them (Section 9.10). As in
Section 9.2, let us use the weighting ^ : S R to specify the degree to which we
care about different states being accurately valued (often taken to be the
on-policy distribution). We can then define the distance between&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection246&gt;

&lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;value functions using the norm&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection247&gt;

&lt;p class=MsoNormal style=&#39;margin-top:1.8pt;margin-right:0cm;margin-bottom:1.8pt;
margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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&lt;p class=4f align=left style=&#39;margin-left:1.0pt;text-align:left;line-height:
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&lt;/div&gt;

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&lt;div class=WordSection249&gt;

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&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
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&lt;div class=WordSection250&gt;

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text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Note that the MSVE from Section 9.2 can be
written simply using this norm as MSVE(&lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) = ||&lt;/span&gt;&lt;span
class=ArialUnicodeMSf5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span
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style=&#39;font-size:9.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;nII&lt;/span&gt;&lt;span
class=MingLiUff7&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
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operation of finding its closest value function in the subspace of
representable value functions is a projection operation. We define a projection
operator n that takes an arbitrary value function to the representable function
that is closest in our norm:&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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&lt;div class=WordSection251&gt;

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&lt;/div&gt;

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lang=EN-US&gt;The representable value function that is closest to the true value
function is thus its projection, nv^, as suggested in Figure 11.3. This is the
solution asymmptotically found by Monte Carlo methods, albeit often very
slowly. The projection operation is discussed more fully in the box.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.85pt;
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  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-align:justify;text-justify:
    inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
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    class=afff5&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;D&lt;/span&gt;&lt;/span&gt;&lt;span
    class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;
    denotes denotes the | S| x each state s:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;the |S| x |S| diagonal matrix with &lt;span
class=afff7&gt;/i&lt;/span&gt; on the diagonal, and &lt;/span&gt;&lt;span class=ArialUnicodeMSf4&gt;&lt;span
lang=EN-US&gt;X &lt;/span&gt;&lt;/span&gt;&lt;span class=afff7&gt;&lt;span lang=EN-US&gt;d&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; matrix whose rows are the feature vectors &lt;/span&gt;&lt;span
class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(s)&lt;sup&gt;T&lt;/sup&gt;,
one for&lt;/span&gt;&lt;/p&gt;

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  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
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  &lt;td width=110 valign=top style=&#39;width:82.3pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:258.0pt;
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  style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=77 valign=top style=&#39;width:58.1pt;border-top:none;border-left:solid windowtext 1.0pt;
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  lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;)&lt;sup&gt;T&lt;/sup&gt;-&lt;sup&gt;_&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:1;height:23.3pt;mso-height-rule:exactly&#39;&gt;
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  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:258.0pt;mso-element-frame-height:62.15pt;mso-element-frame-hspace:
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  &lt;td width=110 valign=top style=&#39;width:82.3pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
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  &lt;p class=afffff6 style=&#39;margin-left:7.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:258.0pt;mso-element-frame-height:62.15pt;mso-element-frame-hspace:
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  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
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  &lt;p class=afffff6 style=&#39;margin-left:4.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:258.0pt;mso-element-frame-height:62.15pt;mso-element-frame-hspace:
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  class=ArialUnicodeMSf4&gt;&lt;span lang=EN-US&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
  class=ArialUnicodeMSfa&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
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  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:2;mso-yfti-lastrow:yes;height:24.25pt;mso-height-rule:
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  &lt;td width=157 valign=top style=&#39;width:117.6pt;border:none;border-left:solid windowtext 1.0pt;
  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
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  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:258.0pt;mso-element-frame-height:62.15pt;mso-element-frame-hspace:
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  mso-border-left-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:24.25pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:258.0pt;
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  &lt;td width=77 valign=top style=&#39;width:58.1pt;border-top:none;border-left:solid windowtext 1.0pt;
  border-bottom:none;border-right:solid windowtext 1.0pt;mso-border-left-alt:
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  &lt;p class=afffff6 style=&#39;margin-left:4.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:258.0pt;mso-element-frame-height:62.15pt;mso-element-frame-hspace:
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  class=ArialUnicodeMSfa&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
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  lang=EN-US&gt; -_&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
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mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;(Formally,
the inverse in (11.11) may not exist, in which case the pseudoinverse is
substituted.) Using these matrices, the norm of a vector can be written&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;span class=28Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
class=281&gt;\B2\B7&lt;/span&gt;&lt;span class=28Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;ii&lt;/span&gt;&lt;/span&gt;&lt;span
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection257&gt;

&lt;p class=MsoNormal style=&#39;margin-top:3.35pt;margin-right:0cm;margin-bottom:
3.35pt;margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
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&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection258&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
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13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;TD methods find different solutions. To understand their rationale,
recall that the Bellman equation for value function is&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.8pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
9.5pt;mso-line-height-rule:exactly;tab-stops:right 247.1pt 288.15pt 400.95pt;
background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;vn(s) &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;^2&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt; n(q&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
class=431pt&gt;&lt;span lang=EN-US&gt;p(s&lt;/span&gt;&amp;#12316;&lt;span lang=EN-US&gt;r&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span
class=431pt&gt;&lt;span lang=EN-US&gt;s,a)&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;[&lt;/span&gt;&lt;/span&gt;&lt;span class=432&gt;&lt;span
lang=EN-US&gt;r +&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(s&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;&#39;&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;] &lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;G S&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;&lt;span lang=EN-US&gt;.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(11.14)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:72.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 130.8pt;
background:transparent&#39;&gt;&lt;span class=432&gt;&lt;span lang=EN-US&gt;a&lt;span
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class=43Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span
class=432&gt;\A3\AC&lt;span lang=EN-US&gt;r&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection259&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:19.15pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;vn is the only value function that solves this
equation exactly. For any approximate value function vw, the difference between
the right and left sides can be used as a measure of how far off vw is from v^,
in a Bellman equation sense. We call this the &lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSfb&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Bellman error&lt;/span&gt;&lt;/span&gt;&lt;span
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class=afffc&gt;&lt;span lang=EN-US&gt;at state s:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:19.9pt;
    margin-left:3.0pt;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=0ptExact6&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(11.15)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.4pt;
    margin-left:3.0pt;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=0ptExact6&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;so that&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.7pt;
    margin-left:3.0pt;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=0ptExact6&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(11.16)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=0ptExact6&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;Bellman&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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   &lt;/tr&gt;
  &lt;/table&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;) = I &lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUffb&gt;&lt;span lang=EN-US style=&#39;font-size:11.5pt;mso-ansi-language:
EN-US&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUffb&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;a|s&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;Ep&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;s&#39;,r|s,a&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;[r &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;vw&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;s&#39;&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;] &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;I &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;- vw&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.2pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;tab-stops:right 60.1pt;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;a&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;s&lt;sup&gt;7&lt;/sup&gt;&lt;/span&gt;\A3\AC&lt;span
lang=EN-US&gt;r&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:5.9pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
17.3pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;where we have subtracted the left-hand side from the right (vis.
(11.14)) =&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;E &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;[&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
class=29pt2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;vw&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;- vw &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;t) | &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;t = &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;s, A&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span style=&#39;font-size:9.5pt;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;]&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.2pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;shows clearly the relationship of the Bellman
error to the TD error. The error is the expectation of the TD error.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.15pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;The vector of all the Bellman errors, at all
states, &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;w G R&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;, is called the &lt;/span&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSfb&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Bellman error vector&lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSfc&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;(shown as BE in Figure 11.3). The overall size of
this vector, in the norm, is an overall measure of the error in the value
function:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.25pt;
margin-left:27.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:right 399.95pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;MSBE(w) = pwII&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;&#39; .&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;(11.17)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;This measure, or objective function, is called the
&lt;/span&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSfb&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt&#39;&gt;Mean Squared Bellman Error &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;(MSBE). It is not possible in general to reduce the MSBE to zero (at
which point &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;w = &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;vn&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;), but for linear function approximation there is
a unique value of w for which the MSBE is minimized. This point in
representable value function space is shown in Figure 11.3 as different from
that which minimizes the MSVE, as it gen&amp;shy;erally is. Methods that seek to
minimize the MSBE are discussed in the next two sections.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.15pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;The Bellman error vector is shown in Figure 11.3
as the result of applying the &lt;/span&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSfb&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Bellman operator&lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSfc&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;Bn &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;: R&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;to the approximate value function. The Bellman operator is defined
by&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:27.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:center 105.0pt right 199.1pt left 201.7pt center 259.8pt right 286.9pt left 289.55pt center 330.6pt right 364.2pt 399.95pt;
background:transparent&#39;&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Bnv&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;)(&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;y^n&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;s^&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;s&#39;,r&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;s,a&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;)&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;[r &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;s&#39;&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;]&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;,&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;s&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;G S&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;v&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;: S&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(11.18)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.9pt;
margin-left:85.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;tab-stops:129.15pt;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;a&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;s&lt;sup&gt;7&lt;/sup&gt;&lt;/span&gt;\A3\AC&lt;span
lang=EN-US&gt;r&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;The Bellman error vector for &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;v &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;can be written &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;w = &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;Bn v&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;w
- &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;w.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.15pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;If the Bellman operator is applied to a value
function in the representable subspace, then, in general, it will produce a new
value function that is outside the subspace, as suggested in the figure. In
dynamic programming, this operator is applied repeatedly to the points outside
the representable space, as suggested by the gray arrows in the top of Figure
11.3. Eventually that process converges to the true value function &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;v^&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;, the only fixedpoint for the Bellman operator,
the only value function for which&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.15pt;
margin-left:27.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;tab-stops:right 399.95pt;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;vn &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Bn vn,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(11.19)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;which is just another way of
writing the Bellman equation for &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;(11.14).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;With function approximation,
however, the intermediate value functions lying out&amp;shy;side the subspace cannot be
represented. The gray arrows in the upper part of&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Figure &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;11.3 &lt;/span&gt;&lt;span lang=EN-US&gt;cannot be followed
because after the first update (dark line) the value function must be projected
back into something representable. The next iteration then begins within the
subspace; the value function is again taken outside of the sub&amp;shy;space by the
Bellman operator and then mapped back by the projection operator, as suggested
by the lower gray arrow and line. Following these arrows is a DP-like process
with approximation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;In this case we are interested in the projection of
the Bellman error vector back into the representable space. This is the
projected Bellman error vector n^&lt;sub&gt;w&lt;/sub&gt;, shown in Figure 11.3 as PBE. The
size of this vector, in the norm, is another measure of error in the
approximate value function. For any approximate value function v, we define the
&lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS6&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt&#39;&gt;Mean Square Projected Bellman Error&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS7&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;(MSPBE) as&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.55pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;tab-stops:right 398.55pt;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;MSPBE(w) = ||nl&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;||&lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU6&gt;&lt;span style=&#39;font-size:9.5pt;
mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; .&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(11.20)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;With linear function approximation there always exists an
approximate value func&amp;shy;tion within the subspace with zero MSPBE; this is the TD
fixedpoint introduced in Section 9.4. As we have seen, this point is not always
stable under semi-gradient TD methods and off-policy training. As shown in the
figure, this value function is gener&amp;shy;ally different from those minimizing MSVE
or MSBE. Methods that are guaranteed to converge to it are discussed in
Sections 11.7 and 11.8.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.05pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l93 level1 lfo48;tab-stops:44.65pt;background:transparent&#39;&gt;&lt;a
name=bookmark176&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;font-size:15.5pt;
font-family:&#34;Georgia&#34;,&#34;serif&#34;;mso-fareast-font-family:Georgia;mso-bidi-font-family:
Georgia;font-weight:normal&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;11.5&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Stochastic Gradient Descent in
the Bellman Error&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Stochastic gradient descent (SGD, Section 9.3) is a
powerful and appealing approach to approximation that we would like to make
full use of in reinforcement learning. Among the algorithms investigated so far
in this book, only the Monte Carlo meth&amp;shy;ods are true SGD methods. These
converge very robustly, under both on-policy and off-policy training as well as
for general non-linear (differentiable) function ap&amp;shy;proximators, though they
are often slower than semi-gradient methods with boot&amp;shy;strapping, which are not
SGD methods. Semi-gradient methods may diverge under off-policy training, as we
have seen earlier in this chapter, and under contrived cases of non-linear
function approximation (Tsitsiklis and Van Roy, 1997). With a true SGD method
these kinds of divergence are not possible.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The appeal of true SGD is so
strong that great effort has gone into finding a prac&amp;shy;tical way of harnessing
it for reinforcement learning. The starting place of all such efforts is the
choice of an error or objective function to optimize. In this and the next
section we explore the origins and limits of the most popular proposed objec&amp;shy;tive
function, that based on the &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS6&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Bellman error&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS7&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;introduced in the previous section. Although this has
been a popular and influential approach, the conclusion that we reach here is
that it is a misstep and offers no good learning algorithms. On the other hand,
this approach fails in an interesting way that offers some insight into what
might constitute a good approach.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.95pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.2pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;To begin, let us consider not the Bellman error, but
something more immediate and naive. Temporal difference learning is driven by
the TD error. Why not take &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;the minimization of the square of the TD error as the
objective? In the general function-approximation case, the one-step TD error
with discounting can be written&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.25pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;^t = Rt+i + &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;v(St+i,&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t) -
v(St,&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:19.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;A possible objective function then is what one
might call the &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span lang=EN-US&gt;Mean Squared TD
Error&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;, or MSTDE:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;
tab-stops:114.15pt;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;MSTDE(&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;^(s)E
&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUffb&gt;&lt;span lang=ZH-TW style=&#39;font-size:11.5pt&#39;&gt;[&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUffb&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\BA\C3&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;| St
= s, At &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;span
lang=EN-US&gt;n]&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.5pt;
margin-left:97.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\80&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:97.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;=^ ^&lt;sup&gt;(s)E&lt;/sup&gt;
[pt^t&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; | &lt;sup&gt;S&lt;/sup&gt;t=&lt;sup&gt;s,A&lt;/sup&gt;t
&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;b&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;]&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.85pt;
margin-left:97.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;\80&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.25pt;
margin-left:97.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:192.05pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;=Eb[pt&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;^2&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; .&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(if
^ is the distribution encountered under b)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:19.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;The last equation is of the form needed for SGD;
it gives the objective as an expec&amp;shy;tation that can be sampled from experience
(remember the experience is due to the behavior policy b. Thus, following the
standard SGD approach, one can derive the per-step update based on a sample of
this expected value:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.9pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t+i = &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t - &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; aV(pt^t&lt;sup&gt;2&lt;/sup&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:.85pt;
margin-left:55.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t -
apt^tV^t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.25pt;
margin-left:55.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:right 398.9pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t + apt^t(Vv(St,&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t) - &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;V-0(St,&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t)),&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;21&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;which you will recognize as the same as the
semi-gradient TD algorithm (11.2) except for the additional final term. This
term completes the gradient and makes this a true SGD algorithm with excellent
convergence guarantees. Let us call this algorithm the &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;naive residual-gradient&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; algorithm (after Baird, 1993).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;Although the naive residual-gradient algorithm
converges robustly, it does not always converge to a desireable place, as the &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;A-split example&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; in the box on the next page shows. In this example a tabular
representation is used, so the true state values can be exactly represented,
yet the naive residual-gradient algorithm finds different values, and these
values have lower MSTDE than do the true values. Minimizing the MSTDE is naive;
by penalizes all TD errors it achieves something more like temporal smoothing
than accurate prediction.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;A better idea would seem to be
minimizing the Bellman error. If the exact values are learned, the Bellman
error is zero everywhere. Thus, a Bellman-error-minimizing algorithm should
have no trouble with the A-split example. We cannot expect to achieve zero
Bellman error in general, as it would involve finding the true value function,
which we presume is outside the space of representable value functions. But
getting close to this ideal is a natural-seeming goal. As we have seen, the
Bellman error is also closely related to the TD error. The Bellman error for a
state is the expected TD error in that state. So let&#39;s repeat the derivation
above with the&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Episodes begin in state &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;and then \A1\AEsplit\A1\AF stochastically, half the time going
to &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;and
then invariably going on to terminate with a reward of 1, and half the time
going to state &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;C &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;and
then invariably terminating with a reward of zero. Reward for the first
transition, out of &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;, is
always zero whichever way the episode goes. As this is an episodic problem, we
can take &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; to be 1. We also assume on-policy training, so that
pt is always &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;, and tabular function
approx&amp;shy;imation, so that the learning algorithms are free to give arbitrary,
independent values to all three states. So it should be an easy problem.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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    &lt;p class=2f9 align=left style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;
    text-align:left;line-height:11.0pt;mso-line-height-rule:exactly;background:
    black&#39;&gt;&lt;span class=20ptExact3&gt;&lt;span lang=EN-US style=&#39;font-size:11.0pt;
    letter-spacing:0pt&#39;&gt;A-split example, showing the naivete of the naive
    residual gradient algorithm&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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    transparent&#39;&gt;&lt;span class=20ptExact4&gt;&lt;span lang=EN-US style=&#39;font-size:11.0pt;
    letter-spacing:0pt&#39;&gt;Consider the following three-state episodic MRP:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;What should the values be? From &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;, half the time the return is 1, and half the time
the return is 0; &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;should
have value 2. From &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;the
return is always&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l50 level1 lfo49;
tab-stops:10.45pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;1,&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;so its value should be &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;, and similarly from &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;C &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;the return is always &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;, so its value should be 0. These are the true values and, as this
is a tabular problem, all the methods presented previously converge to them
exactly.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;However, the naive
residual-gradient algorithm finds different values for &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;C&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;. It converges with &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;having a value of | and &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;C &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;having a value of &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;4 &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;converges correctly to 2). These are in fact the
values that minimize the MSTDE.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Let us compute the MSTDE for these
values. The first transition of each episode is either up from &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;\A1\AFs 2 to &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;\A1\AFs |, a change of |, or down from &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;\A1\AFs 2 to &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;C&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;\A1\AFs i, a change of -1. Because the reward is zero on these
transitions, and &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; = 1,
these changes &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;are&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; the
TD errors, and thus the squared TD error is always &lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU6&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;\9E\E9&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;on the first
transition. The second transition is similar; it is either up from &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;\A1\AFs | to a reward of 1 (and a terminal state of value
0), or down from &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;C&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;\A1\AFs &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;4&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; to a reward of 0 (again with a terminal state of
value 0). Thus, the TD error is always &lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU6&gt;&lt;span
style=&#39;font-size:9.5pt&#39;&gt;ʿ&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;4, for a
squared error of &lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU6&gt;&lt;span style=&#39;font-size:
9.5pt&#39;&gt;\9E\E9&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span
lang=EN-US&gt;on the second step. Thus, for this set of values, the MSTDE on both
steps is &lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU6&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;ʿ&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Now let\A1\AFs compute the MSTDE for
the true values (&lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;at 1, &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;C &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;at 0, and &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;at i). In this case the first transition is either from 2 up to 1,
at &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;, or
from 2 down to &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;, at &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;C&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;; in either case the absolute error is 2 and the
squared error is &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;4&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;. The
second transition has zero error because the starting value, either 1 or&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l81 level1 lfo50;
tab-stops:10.45pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;0&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;depending on whether the transition is from &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;or &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;C&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;, always exactly matches the immediate reward and return. Thus the
squared TD error is | on the first transition and &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; on the second, for a mean reward over the two
transitions of &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;. As &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; is bigger that &lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU6&gt;&lt;span
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solution is worse according to the MSTDE. On this simple problem, the true
values do not have the smallest MSTDE.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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&lt;div class=WordSection260&gt;

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exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;expected TD
error (all expectations here are implicitly conditional on St):&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;E&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;sub&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;6&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
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style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
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lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
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&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection263&gt;

&lt;p class=MsoNormal style=&#39;margin-top:1.45pt;margin-right:0cm;margin-bottom:
1.45pt;margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection264&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
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background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;This update and
various ways of sampling it are referred to as the &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;residual gradient algorithm&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;. If you simply used the sample values in all the
expectations, then the equation above reduces almost exactly to (&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;21&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;),
the naive residual-gradient algo- rithm.&lt;a style=&#39;mso-footnote-id:ftn18&#39;
href=&#34;#_ftn18&#34; name=&#34;_ftnref18&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:
footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[18]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;
But this is naive, because the equation above involves the next state, St+i
appearing in two expectations that are multiplied together. To get an unbiased
sam&amp;shy;ple of the product, one two independent samples of the next state, but
during normal interaction with an external environment only one is obtained.
One can sample one expectation or the other, but not both.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;There are
two ways which the residual gradient algorithm can be made to work. One is in
the case of deterministic environments. If the next state is deterministic,
then the two samples will necessarily be the same, and the naive algorithm is
valid. The other way is to obtain &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span
lang=EN-US&gt;two&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; independent
samples of the next state St+i from St, one for the first expectation and
another for the second expectation. In real interaction with an environment,
this would not seem possible, but when interacting with a simulated environment,
it is. One simply rolls back to the previous state and obtains an alternate
next state before proceeding forward from the first next state. In either of
these cases the residual gradient algorithm is guaranteed to converge to a
minimum of the MSBE under the usual conditions on the step-size parameter. As a
true SGD method, this convergence is robust, applying to both linear and
non-linear function approximators. In the linear case, convergence is always to
the &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span lang=EN-US&gt;unique&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;that
minimizes the MSBE.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;However,
there remain at least three ways in which the convergence of the resid&amp;shy;ual
gradient method is unsatisfactory. The first of these is that empirically it is
slow, much slower that semi-gradient methods. Indeed, proponents of this method
have proposed increasing its speed by combining it with faster semi-gradient
meth&amp;shy;ods initially, then gradually switching over to residual gradient for the
convergence guarantee (Baird and Moore, 1999). The second way in which the
residual-gradient algorithm is unsatisfactory is that it still seems to
converge to the wrong values. It must get the right values in all tabular
cases, such as the A-split example, as for those an exact solution to the
Bellman equation is possible. But if we examine ex&amp;shy;amples with genuine function
approximation, then the residual-gradient algorithm,&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:7.9pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span
class=2f0&gt;&lt;span lang=EN-US&gt;A-presplit example, a counterexample for the MSBE&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:19.05pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Consider the following three-state episodic MRP:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=392 style=&#39;margin-left:131.0pt;line-height:6.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=39ArialUnicodeMS&gt;&lt;span lang=EN-US
style=&#39;font-size:5.0pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=391&gt;&lt;span lang=EN-US&gt; \&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=721 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:25.75pt;
margin-left:131.0pt;line-height:22.0pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark177&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;ح&lt;/span&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark177&#39;&gt;&lt;span class=72ArialUnicodeMS&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:10.0pt&#39;&gt;k&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark177&#39;&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;ح&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Episodes start in
either &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;A1 &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;or &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A2&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;, with equal probability. Because of function
approximation, these two states look exactly the same, like a single state &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;whose feature representation is distinct from and
unrelated to the feature representation of the other two states, &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;C&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;, which are also distinct from each other. Specifically, the
parameter of the function approximator has three components, one giving the
value of state &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;, one
giving the value of state &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;C&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;, and one giving the value of both states &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A1 &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A2&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;. Other than the selection of the initial state, the system is
deterministic. If it starts in &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A1&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;, then it transitions to &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;with a reward of &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; and
then on to termination with a reward of 1. If it starts in &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A2&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;, then it transitions to &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;C&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;, and then to termination, with both rewards zero.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;To a learning
algorithm, seeing only the features, the system looks identical to the A-split
example. The system seems to always start in &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;, followed by either &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;or &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;C &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;with equal probability, and then terminating with a &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; or a &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;0 &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;depending deterministically on the previous state. As in the A-split
example, the true values of &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;C &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;are 1
and 0, and the best shared value of &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A1 &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;A2 &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;is 2,
by symmetry.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Because this
problem appears externally identical to the A-split example, we already know
what values will be found by the algorithms. Semi-gradient TD converges to the
ideal values just mentioned, while the naive residual-gradient algorithm
converges to values of | and 4 for &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;C &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;respectively.
All state transitions are deterministic, so the non-naive residual-gradient
algorithm will also converge to these values (it is the same algorithm in this
case). It follows then that this \A1\AEnaive\A1\AF solution must also be the one that
minimizes the MSBE, and so it is. On a deterministic problem, the Bellman
errors and TD errors are all the same, so the MSBE is always the same as the
MSTDE. Optimizing the MSBE on this example gives rise to the same failure mode
as with the naive residual-gradient algorithm on the A-split example.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;and indeed the MSBE, seems to find the wrong values
functions. One of the most telling such examples is the variation on the
A-split example shown in the box on the previous page. On the &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;A-pre&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;split example the residual-gradient algorithm finds
the same poor solution as its naive version. This example shows intuitively
that minimizing the MSBE (which the residual-gradient algorithm surely does)
may not be a desirable goal.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;The third way in which the convergence of the
residual-gradient algorithm is not satisfactory is also a problem more with the
MSBE than with the algorithm as such. This is explained in the next section.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l93 level1 lfo48;tab-stops:44.4pt;background:transparent&#39;&gt;&lt;a
name=bookmark178&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;font-size:15.5pt;
font-family:&#34;Georgia&#34;,&#34;serif&#34;;mso-fareast-font-family:Georgia;mso-bidi-font-family:
Georgia;font-weight:normal&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;11.6&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Learnability of the Bellman
Error&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;The concept of learnability that we introduce in this
section is different from than that commonly used in machine learning. There, a
hypothesis is said to be \A1\B0learnable\A1\B1 if it is &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;efficiently&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; learnable, meaning that it can be learned within a
polynomial rather than an exponential number of examples. Here we use the term
in a more basic way, to mean learnable at all, with any amount of experience.
It turns out many quantities of apparent interest in reinforcement learning can
not be learned even from an infinite amount of experiential data. These quantities
are well defined and can be computed given knowledge of the internal structure
of the environment, but cannot be computed or estimated from the observed
sequence of feature vectors, actions, and rewards&lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;.&lt;a style=&#39;mso-footnote-id:
ftn19&#39; href=&#34;#_ftn19&#34; name=&#34;_ftnref19&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:
footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=28pt&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[19]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; We say that they are not &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;learnable.&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; It will turn out that the Bellman error introduced
in the last two sections is not learnable in this sense. That the Bellman
cannot be learned from the observable data is probably the strongest reason not
to seek it as an objective.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;To make the concept of learnability
clear, let\A1\AFs start with some simple examples. Consider the two Markov reward
processes&lt;/span&gt;&lt;/span&gt;&lt;a style=&#39;mso-footnote-id:ftn20&#39; href=&#34;#_ftn20&#34;
name=&#34;_ftnref20&#34; title=&#34;&#34;&gt;&lt;span class=28pt&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=28pt&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[20]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; (MRPs) diagrammed below:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=750 style=&#39;margin-left:282.0pt;line-height:10.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;0&lt;/span&gt;&lt;/p&gt;

&lt;p class=136 style=&#39;margin-left:55.0pt;line-height:42.0pt;mso-line-height-rule:
exactly;mso-pagination:lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark179&gt;&lt;span class=13MingLiU&gt;&lt;span style=&#39;font-size:5.5pt&#39;&gt;\A1\A2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;cocy.&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=750 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.15pt;
margin-left:282.0pt;line-height:10.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;2&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Where two edges leave a state, both transitions are
assumed to occur with equal probability, and the numbers indicate the reward
received. All the states appear the same; they all produce the same
single-component feature vector &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; = &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; and have approximated
value w. Thus, the only varying part of a data trajectory is the rewards. The
left MRP stays in the same state and emits an endless stream of 0s and 2s at
random, each with 50-50 probability. The right MRP, on every step, either stays
in its current state or switches to the other, with 50-50 probability. The
reward is deterministic in this MRP, always a 0 from one state and always a 2
from the other, but because the state is 50-50, the observable data is again an
endless stream of 0s and 2s at random, identical to that produced by the left
MDP. (We can assume the right MRP starts in one of two states at random with
equal probability.) Thus, even given even an infinite amount of data, it would
not be possible to tell which of these two MRPs was generating it. In
particular, we could not tell if the MRP has one state or two, is stochastic or
deterministic. These things are not learnable.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;This pair of
MRPs also illustrates that the MSVE objective (9.1) is not learnable. If &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; = 0, then the true values of the three states, left
to right, are 1, 0, and 2. Suppose w = 1. Then the MSVE is 0 for the left MDP
and 1 for the right MRP. Because the MSVE is different in the two problems, yet
the data generated has the same distribution, the MSVE cannot be learned. The
MSVE is not a unique function of the data distribution. And if it cannot be
learned, then how could the MSVE possibly be useful as an objective for
learning?&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;If an objective
cannot be learned, it does indeed draw its utility into question. In the case
of the MSVE, however, there is a way out. Note that the same solution, w = 1,
is optimal for both MRPs above (assuming ^ is the same for the two indistin&amp;shy;guishable
states in the right MRP). Is this a coincidence, or could it be generally true
that all MDPs with the same data distribution also have the same optimal
parameter vector? If this is true\A1\AAand we will show next that it is\A1\AAthen the
MSVE remains a usable objective. The MSVE is not learnable, but the parameter
that optimizes it is!&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:10.15pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;To understand this, it is useful
to bring in another natural objective function, this time one that is clearly
learnable. One error that is always observable is that between the value
estimate at each time and the return from that time. The Mean Square Return
Error (MSRE) is the expectation, under &amp;quot;, of the square of this error. In
the on-policy case it is not difficult that the the MSRE can be written&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
9.95pt;margin-left:28.0pt;text-align:left;line-height:12.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;MSRE(w) = E
[(Gt - v(St,w))&lt;/span&gt;&lt;/span&gt;&lt;span class=29pt2&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
9.75pt;margin-left:80.0pt;text-align:left;line-height:12.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;=MSVE(w) + E
[(Gt - vn(St))&lt;/span&gt;&lt;/span&gt;&lt;span class=29pt2&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Thus, the two
objectives are the same except for a variance term that does not depend on the
parameter vector. The two objectives must therefore have the same optimal
parameter value w*. The overall relationships are summarized in Figure 11.4.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Now let us
return to the MSBE. The MSBE is like the MSVE in that it can be computed from
knowledge of the MDP but is not learnable from data. But it is not like the
MSVE in that its minimum solution is not learnable. The counterexample in the
box (two pages ahead) gives two MRPs that generate the same data distribution
but whose minimizing parameter vector is different, proving that the optimal
param&amp;shy;eter vector is not a function of the data and thus cannot be learned from
it. The other bootstrapping objectives that we have considered, the MSPBE and
MSTDE, can be determined from data (are learnable) and determine optimal
solutions that are in general different from each other and the MSBE minimums.
The general case is summarize in Figure 11.5.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection265&gt;

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    o:title=&#34;image124&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:13.9pt;mso-element-frame-height:
12.0pt;mso-element-frame-hspace:114.7pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:215.35pt;mso-element-top:12.3pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=171 height=16&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=16 style=&#39;padding-top:0cm;padding-right:
  114.7pt;padding-bottom:0cm;padding-left:114.7pt&#39;&gt;
  &lt;p class=344 style=&#39;line-height:12.0pt;mso-line-height-rule:exactly;
  background:transparent;mso-element:frame;mso-element-frame-width:13.9pt;
  mso-element-frame-height:12.0pt;mso-element-frame-hspace:114.7pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:215.35pt;mso-element-top:12.3pt&#39;&gt;&lt;span lang=EN-US&gt;MS&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:399.1pt;mso-element-frame-height:
94.85pt;mso-element-frame-hspace:114.7pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:114.75pt;mso-element-top:78.8pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=685 height=126&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=126 style=&#39;padding-top:0cm;padding-right:
  114.7pt;padding-bottom:0cm;padding-left:114.7pt&#39;&gt;
  &lt;p class=344 style=&#39;text-align:justify;text-justify:inter-ideograph;
  line-height:13.45pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:399.1pt;mso-element-frame-height:
  94.85pt;mso-element-frame-hspace:114.7pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:114.75pt;mso-element-top:78.8pt&#39;&gt;&lt;span lang=EN-US&gt;Figure
  11.4: Causal relationships among the data distribution, MDPs, and errors for
  Monte-Carlo objectives. Two different MDPs can produce the same data distri&amp;shy;bution
  yet also produce different MSVEs, proving that the MSVE objective cannot be
  determined from data and is not learnable. However, all such MSVEs must have
  the same optimal parameter vector, w*! Moreover, this same w* can be
  determined from another objective, the MSRE, which &lt;/span&gt;&lt;span
  class=34ArialUnicodeMS0&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;is&lt;/span&gt;&lt;/span&gt;&lt;span
  lang=EN-US&gt; uniquely determined from the data distribution. Thus w* and the
  MSRE are learnable even though the MSVEs are not.&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Courier New&#34;;
mso-fareast-font-family:&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;
mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:16.3pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=22 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=22 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:16.3pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_46&#34; o:spid=&#34;_x0000_i1075&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image125&#34;
   style=&#39;width:398.25pt;height:15.75pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image124.jpg&#34;
    o:title=&#34;image125&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:6.15pt;margin-right:16.0pt;margin-bottom:6.3pt;
margin-left:16.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_361&#34;
 o:spid=&#34;_x0000_s1294&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image126&#34; style=&#39;position:absolute;
 left:0;text-align:left;margin-left:47.15pt;margin-top:51.6pt;width:79.7pt;
 height:36.5pt;z-index:251889450;visibility:visible;mso-wrap-style:square;
 mso-width-percent:0;mso-height-percent:0;mso-wrap-distance-left:5pt;
 mso-wrap-distance-top:0;mso-wrap-distance-right:5pt;
 mso-wrap-distance-bottom:0;mso-position-horizontal:absolute;
 mso-position-horizontal-relative:margin;mso-position-vertical:absolute;
 mso-position-vertical-relative:text;mso-width-percent:0;mso-height-percent:0;
 mso-width-relative:page;mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image125.jpg&#34;
  o:title=&#34;image126&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;To show the full range of
possibilities we need a slightly more complex pair of Markov reward processes
(MRPs) than those considered earlier. Consider the following two MRPs:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:52.3pt;mso-element-frame-hspace:
42.25pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
mso-element-anchor-horizontal:column;mso-element-left:234.55pt;mso-element-top:
.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=70&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=70 style=&#39;padding-top:0cm;padding-right:
  42.25pt;padding-bottom:0cm;padding-left:42.25pt&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:52.3pt;mso-element-frame-hspace:42.25pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:234.55pt;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_47&#34; o:spid=&#34;_x0000_i1074&#34;
   type=&#34;#_x0000_t75&#34; alt=&#34;image127&#34; style=&#39;width:122.25pt;height:51.75pt;
   visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image126.jpg&#34;
    o:title=&#34;image127&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:6.15pt;margin-right:16.0pt;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Where two edges leave a state, both transitions are
assumed to occur with equal probability, and the numbers indicate the reward
received. The MRP on the left has two states that are represented distinctly.
The MRP on the right has three states, two of which, &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;&#39;, appear the same and must be given the same approximate value.
Specifically, w has two components and the value of state &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;is given by the first component and the value of &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;&#39; is given by the second. The second MRP has been designed so that
equal time is spent in all three states, so we can take &amp;quot;(s) = |, Vs.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Note that the observable data
distribution is identical for the two MRPs. In both cases the agent will see
single occurrences of &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;followed by a 0, then some number of apparent &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;s, each followed by a -1 except the last, which is
followed by a &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;, then we start all over
again with a single &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;and a &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;, etc.
All the statistical details are the same as well; in both MRPs, the probability
of a string of &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;s is &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;-k&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Now suppose w = 0. In the first
MRP, this is an exact solution, and the MSBE is zero. In the second MRP, this
solution produces a squared error in both &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;&#39; of 1, such that MSBE = &amp;quot;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;)1+ &amp;quot;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;&#39;)1 =&lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU6&gt;&lt;span
style=&#39;font-size:9.5pt&#39;&gt;\D3\FE&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;.These
two MRPs, which generate the same data distribution, have different MSBEs; the
MSBE is not learnable.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
197.7pt;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Moreover (and
unlike the earlier example for the MSVE) the minimizing value of w is different
for the two MRPs. For the first MRP, w = 0 minimizes the MSBE for any &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;. For the second MRP, the minimizing w is a
complicated function of &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;, but in
the limit, as &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;1, it is (-2, 0)&lt;sup&gt;T&lt;/sup&gt;. Thus the solution that&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;minimizes MSBE cannot be estimated from data alone;
knowledge of the MRP beyond what is revealed in the data is required. In this
sense, it is impossible in principle to pursue the MSBE as an objective for
learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;It may be surprising that the
MSBE-minimizing value of &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;is so far from zero. Recall that &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;has a dedicated weight and thus its value is
unconstrained by function approximation. &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;is followed by a reward of 0 and transition to a
state with a value of nearly 0, which suggests v&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;) should be 0; why is its optimal value substantially negative
rather than 0? The answer is that making the value of &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;negative reduces the error upon arriving in &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;from &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;. The reward on this deterministic transition is 1, which implies
that &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;B &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;should
have a value 1 more than &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;. Because &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;B&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;\A1\AFs value is approximately zero, &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;\A1\AFs value is driven toward -1. The MSBE-minimizing
value of c -1 for &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;is a
compromise between reducing the errors on leaving and on entering &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;Thus, the MSBE is not learnable; it cannot be estimated from feature
vectors and other observable data. This limits the MSBE to model-based
settings. There can be no algorithm that minimizes the MSBE without access to
the underlying MDP states beyond the feature vectors. The residual-gradient
algorithm is only able to minimize MSBE because it is allowed to double sample
from the same state\A1\AAnot a state that has the same feature vector, but one that
is guaranteed to be the same underlying state. We can see now that there is no
way around this. Minimizing the MSBE requires some such access to the nominal,
underlying MDP. This is an important limitation of the MSBE beyond that
identified in the A-presplit example on page 286. All this directs more
attention toward the MSPBE.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:2.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l93 level1 lfo48;tab-stops:46.65pt;background:transparent&#39;&gt;&lt;a
name=bookmark180&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;font-size:15.5pt;
font-family:&#34;Georgia&#34;,&#34;serif&#34;;mso-fareast-font-family:Georgia;mso-bidi-font-family:
Georgia;font-weight:normal&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;11.7&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Gradient-TD Methods&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;We now consider SGD methods for minimizing the MSPBE.
As true SGD methods, these &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;gradient-TD methods&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; have robust convergence properties even under
off-policy training and non-linear function approximation. Remember that in the
linear case there it is always an exact solution, the TD fixedpoint &lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;td , at which the MSPBE is zero. This solution could
be found by least-squares methods (Section 9.7), but only by methods of
quadratic O(d&lt;/span&gt;&lt;/span&gt;&lt;span class=29pt2&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;)
complexity in the number of parameters. We seek instead an SGD method, which
should be O(d) and have robust convergence properties.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:7.15pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;To derive an SGD method for the MSPBE (assuming linear function
approxima&amp;shy;tion) we begin by expanding and rewriting the objective (&lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;20&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;) in
matrix terms:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
4.8pt;margin-left:28.0pt;text-align:left;line-height:12.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;MSPBE(&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;) = &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;||&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;nl&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w If&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.0pt;
margin-left:87.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;tab-stops:right 399.1pt;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;=(n^&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;)&lt;sup&gt;T&lt;/sup&gt;Dn^&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;(from (&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;))&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:87.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;=G n&lt;sup&gt;T&lt;/sup&gt;Dn&amp;lt;!&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:87.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:22.1pt;mso-line-height-rule:exactly;tab-stops:right 399.1pt;
background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;D&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; D&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;)&lt;sup&gt;-&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;l&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU7&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;̎&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=ZH-TW style=&#39;font-size:9.5pt;mso-ansi-language:ZH-TW&#39;&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU6&gt;&lt;span style=&#39;font-size:9.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\A8&lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;22&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:22.1pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;(using (11.11) and the identity n&lt;sup&gt;T&lt;/sup&gt;Dn = D&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;X &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;D&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;)-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; X&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;D)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.9pt;
margin-left:87.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:right 399.1pt;
background:transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;=(&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;D^&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;w )&lt;sup&gt;T&lt;/sup&gt;(X&lt;sup&gt;t&lt;/sup&gt;DX)&lt;sup&gt;-1&lt;/sup&gt;(X&lt;sup&gt;t&lt;/sup&gt;
&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;Dl&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;).&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(11.23)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;The gradient with respect to &lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;is&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=1120 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:126.0pt;margin-bottom:.0001pt;line-height:12.0pt;mso-line-height-rule:
exactly;tab-stops:center 168.7pt right 178.55pt;background:transparent&#39;&gt;&lt;a
name=bookmark181&gt;&lt;span lang=EN-US&gt;r&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;i&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;T&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
6.55pt;margin-left:28.0pt;text-align:left;line-height:12.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;VMSPBE(&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;) = 2V &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;D^&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;D&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;)&lt;sup&gt;-&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;l&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;D^&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:7.15pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;To turn this into an SGD method, we have to sample something on
every time step that has this quantity as its expected value. Let us take
&amp;quot; to be the distribution of states visited under the behavior policy. All
three of the factors above can then be written in terms of expectations under
this distribution. For example, the last factor can be written&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:28.0pt;line-height:12.0pt;mso-line-height-rule:
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class=430pt&gt;&lt;span lang=EN-US&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
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class=430pt&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang4&gt;&lt;span
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class=430pt&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang4&gt;&lt;span
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class=430pt&gt;&lt;span lang=EN-US&gt;) = E[&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang4&gt;&lt;span
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&lt;p class=afffff6 style=&#39;margin-right:16.0pt;text-indent:0cm;line-height:13.7pt;
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lang=EN-US&gt;which is just the expectation of the semi-gradient TD(0) update
(11.2). The first factor is the transpose of the gradient of this update:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

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 &lt;/v:shape&gt;&lt;/o:wrapblock&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.1pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection269&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;Finally, the middle factor is the inverse of the
expected outer-product matrix of the feature vectors:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:19.75pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 140.8pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;X&lt;sup&gt;t&lt;/sup&gt;DX =&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;^(s)x&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;sub&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;8&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;x&lt;sup&gt;T&lt;/sup&gt; = E xtx&lt;sup&gt;T&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;Substituting these expectations for the three
factors in our expression for the gradient of the MSPBE, we get&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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  &lt;![if !mso]&gt;
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   &lt;tr&gt;
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    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=0ptExact6&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(11.24)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;VMSPBE(w) = 2E pt(&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;xt+i - xt)x&lt;sup&gt;T&lt;/sup&gt; E xtxf&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;E[xtpt^t]
&amp;#8226;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;It might not be obvious that we have made any
progress by writing the gradient in this form. It is a product of three
expressions and the first and last are not independent. They both depend on the
next feature vector xt+i; we cannot simply sample both of these expectations
and then multiply the samples. This would give us an unbiased estmate of the
gradient just as in the naive residual-gradient algorithm.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;Another idea would be to estimate the three
expectations separately and then combine them to produce an unbiased estimate
of the gradient. This would work, but would require a lot of computational
resources, particularly to store the first two expectations, which are &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;d&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;
x &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span lang=EN-US&gt;d&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; matrices, and to compute the inverse of the
second. This idea can be improved. If two of the three expectations are
estimated and stored, then the third could be sampled and used in conjunction
with the two stored quantities. For example, you could store estimates of the
second two quantities (using the increment inverse-updating techniques in
Section 9.7) and then sample the first expression. Unfortunately, the overall
algorithm would still be of quadratic complexity (of order O(d&lt;sup&gt;2&lt;/sup&gt;)).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;The idea of storing some
estimates separately and then combining them with samples is a good one and is
also used in gradient-TD methods. In these methods we estimate and store &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;the product&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; of the second two factors. These factors are an d x d matrix and an
n-vector, so their product is just an n-vector, like w itself. We denote this
second learned vector as v:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection270&gt;

&lt;p class=MsoNormal style=&#39;line-height:6.6pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection271&gt;

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&lt;/div&gt;

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&lt;div class=WordSection273&gt;

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background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;This form is
familiar to students of linear supervised learning. It is the solution to a
linear least-squares problem that tries to approximate pt^t from the features.
The standard SGD method for incrementally finding the vector v that minimizes
the&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;div class=WordSection274&gt;

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0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;expected squared error (v&lt;sup&gt;T&lt;/sup&gt;xt - pt&amp;amp;)
is known as the Least Mean Square (LMS) rule:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;pt (5t - v&lt;sub&gt;t&lt;/sub&gt;&lt;sup&gt;T&lt;/sup&gt;xt) xt,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;where ^ &amp;gt; 0 is another
step-size parameter. We can use this method to effectively achieve (11.25) with
O(d) storage and per-step computation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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approximating (11.25), we can update our main pa&amp;shy;rameter vector wt using SGD
methods based on (11.24). The simplest such rule is&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;div class=WordSection276&gt;

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&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
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    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(sampling)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;wt + apt ^txt - &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;xt+ix&lt;sup&gt;T&lt;/sup&gt;vt^&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;which again is O(d) if the
final product is done first. This algorithm is known as either &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;TD(0) with gradient correction (TDC)&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; or, alternatively, as &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;GTD(0).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Figure 11.6 shows a sample and
the expected behavior of TDC on Baird\A1\AFs coun&amp;shy;terexample. As intended, the MSPBE
falls to zero, but note that the individual components of the parameter vector
do not approach zero. In fact, these values are still far from an optimal
solution, v(s) = &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;,Vs,
for which w would have to be propor&amp;shy;tional to (1,1,1,1,1,1, 4 - &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;)&lt;sup&gt;t&lt;/sup&gt;. After 1000 iterations we are still
far from an optimal solution, as we can see from the MSVE, which remains almost
2. The system is actually converging to an optimal solution, but progress is
extremely slow because the MSPBE is already so close to zero.&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:224.15pt;mso-element-frame-hspace:
23.05pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
mso-element-anchor-horizontal:column;mso-element-left:23.1pt;mso-element-top:
.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=299&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=299 style=&#39;padding-top:0cm;padding-right:
  23.05pt;padding-bottom:0cm;padding-left:23.05pt&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:224.15pt;mso-element-frame-hspace:23.05pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:23.1pt;mso-element-top:
  .05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_48&#34;
   o:spid=&#34;_x0000_i1073&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image128&#34; style=&#39;width:165.75pt;
   height:224.25pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image127.jpg&#34;
    o:title=&#34;image128&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:9.85pt;margin-right:1.0pt;margin-bottom:22.85pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_325&#34;
 o:spid=&#34;_x0000_s1260&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image129&#34; style=&#39;position:absolute;
 left:0;text-align:left;margin-left:207.75pt;margin-top:.95pt;width:165.6pt;
 height:224.15pt;z-index:251896618;visibility:visible;mso-wrap-style:square;
 mso-width-percent:0;mso-height-percent:0;mso-wrap-distance-left:5pt;
 mso-wrap-distance-top:0;mso-wrap-distance-right:5pt;
 mso-wrap-distance-bottom:0;mso-position-horizontal:absolute;
 mso-position-horizontal-relative:margin;mso-position-vertical:absolute;
 mso-position-vertical-relative:margin;mso-width-percent:0;
 mso-height-percent:0;mso-width-relative:page;mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image128.jpg&#34;
  o:title=&#34;image129&#34;/&gt;
 &lt;w:wrap type=&#34;tight&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Figure 11.6: The behavior of the TDC
algorithm on Baird\A1\AFs counterexample. On the left is shown a typical single run,
and on the right is shown the expected behavior of this algorithm if the
updates are done in asynchronous sweeps (analogous to (11.7), except for the
two TDC parameter vectors). The step sizes were a = 0.005 and &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;/3&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; = 0.05.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;GTD2 and TDC both involve two
learning processes, a primary one for w and a secondary one for v. The logic of
the primary learning process relies on the sec&amp;shy;ondary learning process having
finished, at least approximately, whereas the sec&amp;shy;ondary learning process
proceeds without being influenced by the first. We call this sort of
asymmetrical dependence a &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;cascade&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;. In cascades we often assume that the secondary learning process is
proceeding faster and thus is always at its asymmptotic value, ready and
accurate to assist the primary learning process. The convergence proofs for
these methods often make this assumption explicitly. These are called &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;two-time-scale&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; proofs. The fast time scale is that of the secondary
learning process, and the slower time scale is that of the primary learning
process. If a is the step size of the primary learning process, and &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;P&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; is the step size of the secondary learning process,
then these convergence proofs will typically be in the limit as P &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; and&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:369.0pt;margin-bottom:
0cm;margin-left:0cm;margin-bottom:.0001pt;text-align:left;line-height:12.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2MingLiU6&gt;&lt;span
style=&#39;font-size:9.5pt&#39;&gt;\C1\A2&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;^ &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;0 &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;^ ] &lt;sup&gt;0&lt;/sup&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:45.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Gradient-TD methods are currently the most well
understood and widely used stable off-policy methods. There are extensions to
action values and control (GQ, Maei et al., 2010), to eligibility traces
(GTD(A) and GQ(A), Maei, 2011; Maei and Sutton, 2010), and to nonlinear
function approximation (Maei et al., 2009). There has also been proposed hybrid
algorithms midway between semi-gradient TD and gradient TD. The Hybrid TD (HTD,
Hackman, 2012; White and White, 2016) al&amp;shy;gorithm behaves like GTD in states
where the target and behavior policies are very different and like
semi-gradient TD in states where they are the same. Finally, the gradient-TD
idea has been combined with the ideas of proximal method and control&lt;br
clear=all style=&#39;page-break-before:always&#39;&gt;
variates to produce more efficient methods (Mahadevan et al., 2014).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l93 level1 lfo48;tab-stops:45.4pt;background:transparent&#39;&gt;&lt;a
name=bookmark183&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;font-size:15.5pt;
font-family:&#34;Georgia&#34;,&#34;serif&#34;;mso-fareast-font-family:Georgia;mso-bidi-font-family:
Georgia;font-weight:normal&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;11.8&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Emphatic-TD Methods&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;We turn now to the second major strategy that has
been extensively explored for ob&amp;shy;taining a cheap and efficient off-policy
learning method with function approximation. Recall that linear semi-gradient
TD methods are efficient and stable when trained under the on-policy
distribution, and that we showed in Section 9.4 that this has to do with the
matrix A and the match between the on-policy state distribution and the
state-transition probabilities p(s|s, a) under the target policy. In off-policy
learning, we reweight the state transitions using importance weighting so that
they become appropriate for learning about the target policy, but the state
distribution is still that of the behavior policy. There is a mismatch. A
natural idea is to somehow reweight the states, emphasizing some and
de-emphasizing others, so as to return the distribution of updates to the
on-policy distribution. There would then be a match, and stability and
convergence would follow from existing results. This is the idea of Emphatic-TD
methods, first introduced, for on-policy training, in Section 9.10.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Actually, the notion of \A1\B0the
on-policy distribution\A1\B1 is not quite right, as there are many on-policy
distributions, and any one of these is sufficient to guarantee stability.
Consider an undiscounted episodic problem. The way episodes terminate is fully
determined by the transition probabilities, but there may be several different
ways the episodes might begin. However the episodes start, if all state
transitions are due to the target policy, then the state distribution that
results is an on-policy distribution. You might start close to the terminal
state and visit only a few states with high probability before ending the
episode. Or you might start far away and pass through many states before
terminating. Both are on-policy distributions, and training on both with a
linear semi-gradient method would be guaranteed to be stable. However the
process starts, an on-policy distribution results as long as all states
encountered are updated up until termination.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;If there is discounting, it can be
treated as partial or probabilistic termination for these purposes. If &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; = 0.9, then we can consider that with probability
0.1 the pro&amp;shy;cess terminates on every time step and then immediately restarts in
the state that is transitioned to. A discounted problem is one that is
continually terminating and restarting with probability 1 - &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; on every step. This way of thinking about discount&amp;shy;ing
is an example of a more general notion of &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;pseudo
termination&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;\A1\AAtermination that does
not affect the sequence of state transitions, but does affect the learning
process and the quantities being learned. This kind of pseudo termination is
important to off-policy learning because the restarting is optional\A1\AAremember we
can start any way we want to\A1\AAand the termination relieves the need to keep
including encoun&amp;shy;tered states within the on-policy distribution. That is, if we
don\A1\AFt consider the new states as restarts, then discounting quickly give us a
limited on-policy distribution.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:12.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The one-step emphatic-TD algorithm
for learning episodic state values is defined &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;by:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:201.0pt;margin-bottom:0cm;
margin-left:28.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:25.9pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;^t = Rt+i + &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;v(St+i,&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t) - v(St,&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t), &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t+i
= &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t + aMtpt^t Vv(St,&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t),&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.25pt;
margin-left:28.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Mt = 7pt-iMt-i + It,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:9.3pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;with It, the &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;interest,&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; being arbitrary and Mt, the &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span
lang=EN-US&gt;emphasis,&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; being
initialized to Mt_i = 0. How does this algorithm perform on Baird\A1\AFs
counterexample? Figure 11.7 shows the trajectory in expectation of the
components of the parameter vector (for the case in which It = 1, Vt). There
are some oscilations but eventually everything converges and the MSVE goes to
zero. These trajectories are obtained by iteratively computing the expectation
of the parameter vector trajectory without any of the variance due to sampling
of transitions and rewards. We do not show the results of applying ETD directly
because its variance on Baird\A1\AFs counterexample is so high that it is nigh
impossible to get consistent results in computational experiments. The
algorithm converges to the optimal solution in theory on this problem, but in
practice it does not. We turn to the topic of reducing the variance of all
these algorithms in the next section.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:174.7pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=233 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=233 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:174.7pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_49&#34; o:spid=&#34;_x0000_i1072&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image130&#34;
   style=&#39;width:279pt;height:174.75pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image129.jpg&#34;
    o:title=&#34;image130&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=afffff8 style=&#39;line-height:12.0pt;mso-line-height-rule:exactly;
  background:transparent;mso-element:frame;mso-element-frame-height:174.7pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span class=affff1&gt;&lt;span lang=EN-US&gt;Figure 11.7: The behavior of the
  ETD algorithm in expectation on Baird\A1\AFs counterexample. The step size was a =
  0.03.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:32.7pt;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l93 level1 lfo48;tab-stops:44.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark184&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;font-size:15.5pt;
font-family:&#34;Georgia&#34;,&#34;serif&#34;;mso-fareast-font-family:Georgia;mso-bidi-font-family:
Georgia;font-weight:normal&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;11.9&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Reducing Variance&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Off-policy learning is of
inherently greater variance than on-policy learning. This is not surprising; if
you receive data less closely related to a policy, you should expect to learn
less about the policy\A1\AFs values. In the extreme, one may be able to learn
nothing. You can\A1\AFt expect to learn how to drive by cooking dinner, for example.
Only if the target and behavior policies are related, if they visit similar
states and &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection279&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;take
similar actions, should one be able to make significant progress in off-policy
training.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;On the other hand, any policy has
many neighbors, many similar policies with considerable overlap in states
visited and actions chosen, and yet which are not identical. The raison d\A1\AFetre
of off-policy learning is to enable generalization to this vast number of
related-but-not-identical policies. The problem remains of how to make the best
use of the experience. Now that we have some methods that are stable in
expected value (if the step sizes are set right), attention naturally turns to
reducing the variance of the estimates. There are many possible ideas, and we
can just touch on of a few of them in this introductory text.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Why is controlling variance
especially critical in off-policy methods based on im&amp;shy;portance sampling? As we
have seen, important sampling often involves products of policy ratios. The
ratios are always one in expectation, but their actual values may be much
significantly higher or as low as zero. Successive ratios are uncorrelated, so their
products are also always one in expected value, but can to be of great
variance. Recall that these ratios multiply the step size in SGD methods, so
high variance means taking steps that vary greatly in their size. This is
problematic for SGD be&amp;shy;cause of the occasional very large steps. They must not
be so large as to take the parameter to a part of the space with a very
different gradient. SGD methods rely on averaging over multiple steps to get a
good sense of the gradient, and if they make large moves from single samples
they become unreliable. If the step-size parameter is set small enough to
prevent this, then the expected step can end up being very small, resulting in
very slow learning. The notions of momentum (Derthick, 1984), of Polyak-Ruppert
averaging (Polyak, 1991; Ruppert, 1988; Polyak and Juditsky, 1992), or further
extensions of these ideas may significantly help. Methods for adap&amp;shy;tively
setting separate step sizes for different components of the parameter vector
are also pertinent (e.g., Jacobs, 1988; Sutton, 1992), as are the \A1\B0importance
weight aware\A1\B1 updates of Karampatziakis and Langford (2010).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;In Chapter 5 we saw how weighted
importance sampling is significantly better behaved, with lower variance
updates, than ordinary importance sampling. However, adapting weighted
importance sampling to function approximation is challenging and can probably
only be done approximately with O(d) complexity (Mahmood and Sutton, 2015).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The Tree Backup algorithm shows
that is is possible to perform some off-policy learning without using
importance sampling. This idea has been extended to the off-policy case to
produce stable and more efficient methods by Munos, Stepleton, Harutyunyan, and
Bellemare (2016) and by Mahmood, Yu and Sutton (2017).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Another, complementary strategy is
to allow the target policy to be determined in part by the behavior policy, in
such a way that it never can be so different from it to create large importance
sampling ratios. For example, the target policy can be defined by reference to
the behavior policy, as in the \A1\B0recognizers\A1\B1 proposed by Precup et al. (2005).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:30.05pt;
margin-left:1.0pt;text-indent:0cm;line-height:15.5pt;mso-line-height-rule:exactly;
mso-list:l93 level1 lfo48;tab-stops:59.1pt;background:transparent&#39;&gt;&lt;a
name=bookmark185&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;font-size:15.5pt;
font-family:&#34;Georgia&#34;,&#34;serif&#34;;mso-fareast-font-family:Georgia;mso-bidi-font-family:
Georgia;font-weight:normal&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;11.10&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Summary&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Off-policy learning is a tempting challenge, testing
our ingenuity in designing sta&amp;shy;ble and efficient learning algorithms. Tabular
Q-learning makes off-policy learning seem easy, and it has natural
generalizations to Expected Sarsa and to the Tree Backup algorithm. But as we
have seen in this chapter, the extension of these ideas to significant function
approximation, even linear function approximation, involves new challenges and
forces us to deepen our understanding of reinforcement learning algorithms.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Why go to such lengths? One reason
to seek off-policy algorithms is to give flexibility in dealing with the
tradeoff between exploration and exploitation. Another is to free behavior from
learning, and avoid the tyranny of the target policy. TD learning appears to
hold out the possibility of learning about multiple things in parallel, of
using one stream of experience to solve many tasks simultaneously. We can certainly
do this in special cases, just not in every case that we would like to or as
efficiently as we would like to.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;In this chapter we divided the
challenge of off-policy learning into two parts. The first part, correcting the
targets of learning for the behavior policy, is straightfor&amp;shy;wardly dealt with
using the techniques devised earlier for the tabular case, albiet at the cost
of increasing the variance of the updates and thereby slowing learning. High
variance will probably always remains a challenge for off-policy learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The second part of the challenge
of off-policy learning emerges as the instability of semi-gradient TD methods
that involve bootstrapping. We seek powerful function approximation, off-policy
learning, and the efficiency and flexibility of bootstrapping TD methods, but
it is challenging to combine all three aspects of this &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;deadly triad &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;in one algorithm without introducing the potential
for instability. There have been several attempts. The most popular has been to
seek to perform true stochastic gradient descent (SGD) in the Bellman error
(a.k.a. the Bellman residual). However, our analysis concludes that this is not
an appealing goal in many cases, and that anyway it is impossible to achieve
with a learning algorithm\A1\AAthat the gradient of the MSBE is not learnable from
experience that reveals only feature vectors and not underlying states. Another
approach, Gradient-TD methods, performs SGD in the &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;projected&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; Bellman error. The gradient of the MSPBE is
learnable with O(d) complexity, but at the cost of a second parameter vector
with a second step size. The newest family of methods, Emphatic-TD methods,
refine an old idea for reweighting updates, emphasizing some and de-emphasizing
others. In this way they restore the special properties that make on-policy
learning stable with computationally simple semi-gradient methods.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The whole area of off-policy
learning is relatively new and unsettled. Which meth&amp;shy;ods are best or even
adequate is not yet clear. Are the complexities of the new methods introduced
at the end of this chapter really necessary? Which of them can be combined
effectively with variance reductions methods? The potential for off-policy
learning remains tantalizing, the best way to achieve it still a mystery.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.05pt;
margin-left:36.0pt;line-height:13.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;a name=bookmark186&gt;&lt;span lang=EN-US&gt;Bibliographical and Historical
Remarks&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l89 level1 lfo51;
tab-stops:34.9pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;11.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The first
semi-gradient method was linear TD(A) (Sutton, 1988). The name \A1\B0semi-gradient\A1\B1
is more recent (Sutton, 2015a). Semi-gradient off-policy TD(0) with general
importance-sampling ratio may not have been explic&amp;shy;itly stated until Sutton, Mahmood,
and White (2016), but the action-value forms were introduced by Precup, Sutton,
and Singh (2000), who also did eligibility trace forms of these algorithms (see
Chapter 12). Their continu&amp;shy;ing, undiscounted forms have not been significantly
explored. The atomic multi-step forms given here are new.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l89 level1 lfo51;
tab-stops:34.9pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;11.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The earliest
w-to-2w example was given by Tsitsiklis and Van Roy (1996), who also introduced
the specific counterexample in the box on page 276. Baird\A1\AFs counterexample is
due to Baird (1995), though the version we present here is slightly modified.
Averaging methods for function approximation were developed by Gordon (1995,
1996). Other examples of instability with off- policy DP methods and more
complex methods of function approximation are given by Boyan and Moore (1995).
Bradtke (1993) gives an example in which Q-learning using linear function
approximation in a linear quadratic regulation problem converges to a
destabilizing policy.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l89 level1 lfo51;
tab-stops:34.9pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;11.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The deadly triad
was first identified by Sutton (1995) and thoroughly ana&amp;shy;lyzed by Tsitsiklis
and Van Roy (1997). The name \A1\B0deadly triad\A1\B1 is due to Sutton (2015a).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l89 level1 lfo51;
tab-stops:34.9pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;11.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;This kind of
linear analysis was pioneered by Tsitsiklis and Van Roy (1996; 1997), including
the dynamic programming operator. Diagrams like Fig&amp;shy;ure 11.3 were introduced by
Lagoudakis and Parr (2003).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.8pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l89 level1 lfo51;
tab-stops:34.9pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;11.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The MSBE was
first proposed as an objective function for dynamic program&amp;shy;ming by Schweitzer
and Seidmann (1985). Baird (1995, 1999) extended it to TD learning based on
stochastic gradient descent, and Engel, Mannor, and Meir (2003) extended it to
least squares (O(d&lt;sup&gt;2&lt;/sup&gt;)) methods known as Gaussian Process TD learning.
In the literature, MSBE minimization is often referred to as Bellman residual
minimization.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.35pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;The earliest A-split example is due to Dayan (1992). The two forms given
here were introduced by Sutton et al. (2009).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.75pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:12.0pt;mso-line-height-rule:exactly;mso-list:l89 level1 lfo51;
tab-stops:34.9pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;11.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The contents of
this section are new to this text.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l89 level1 lfo51;tab-stops:34.9pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;11.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Gradient-TD
methods were introduced by Sutton, Szepesvari, and Maei (2009). The methods
highlighted in this section were introduced by Sut&amp;shy;ton et al. (2009) and
Mahmood et al. (2014). The most sensitive empirical investigations to date of
gradient-TD and related methods are given by Geist and Scherrer (2014), Dann,
Neumann, and Peters (2014), and White (2015).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l89 level1 lfo51;tab-stops:35.3pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;11.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Emphatic-TD
methods were introduced by Sutton, Mahmood, and White (2016). Full convergence proofs
and other theory were later established by Yu (2015a; 2015b; Yu, Mahmood, and
Sutton, 2017) and Hallak, Tamar, Munos, and Mannor (2015).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection280&gt;

&lt;p class=8a style=&#39;margin-bottom:29.1pt;line-height:19.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=86&gt;&lt;span lang=EN-US&gt;Chapter 12&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=833 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:37.55pt;
margin-left:0cm;line-height:22.0pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark187&gt;&lt;span lang=EN-US&gt;Eligibility Traces&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Eligibility traces are one of the basic mechanisms of
reinforcement learning. For example, in the popular TD(A) algorithm, the &lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU8&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;refers
to the use of an eligibility trace. Almost any temporal-difference (TD) method,
such as Q-learning or Sarsa, can be combined with eligibility traces to obtain
a more general method that may learn more efficiently.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Eligibility traces unify and
generalize TD and Monte Carlo methods. When TD methods are augmented with
eligibility traces, they produce a family of methods spanning a spectrum that
has Monte Carlo methods at one end (A = 1) and one- step TD methods at the
other (A = 0). In between are intermediate methods that are often better than
either extreme method. Eligibility traces also provide a way of implementing
Monte Carlo methods online and on continuing problems without episodes.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Of course, we have already seen
one way of unifying TD and Monte Carlo methods: the n-step TD methods of
Chapter 7. What eligibility traces offer beyond these is an elegant algorithmic
mechanism with significant computational advantages. The mechanism is a
short-term memory vector, the &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;eligibility trace&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; et G R&lt;sup&gt;d&lt;/sup&gt;, that parallels the long-term
weight vector wt G R&lt;sup&gt;d&lt;/sup&gt;. The rough idea is that when a component of wt
participates in producing an estimated value, then the corresponding component
of et is bumped up and then begins to fade away. Learning will then occur in
that component of wt if a nonzero TD error occurs before the trace falls back
to zero. The trace-decay parameter A G [0,1] determines the rate at which the
trace falls.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The primary computational
advantage of eligibility traces over n-step methods is that only a single trace
vector is required rather than a store of the last n feature vectors. Learning
also occurs continually and uniformly in time rather than being delayed and
then catching up at the end of the episode. In addition learning can occur and
affect behavior immediately after a state is encountered rather than being
delayed n steps.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Eligibility traces illustrate that
a learning algorithm can sometimes be imple&amp;shy;mented in a different way to obtain
computational advantages. Many algorithms are most naturally formulated and
understood as an update of a state\A1\AFs value based&lt;br clear=all style=&#39;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;on
events that follow that state over multiple future time steps. For example,
Monte Carlo methods (Chapter 5) update a state based on all the future rewards,
and n- step TD methods (Chapter 7) update based on the next &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; rewards and state &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; steps in the future. Such
formulations, based on looking forward from the updated state, are called &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;forward views&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;. Forward views are always
somewhat complex to imple&amp;shy;ment because the update depends on later things that
are not available at the time. However, as we show in this chapter it is often
possible to achieve nearly the same updates\A1\AAand sometimes &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;exactly&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; the same updates\A1\AAwith an
algorithm that uses the current TD error, looking backward to recently visited
states using an eligibil&amp;shy;ity trace. These alternate ways of looking at and
implementing learning algorithms are called &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;backward views&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;. Backward views,
transformations between forward-views and backward-views, and equivalences
between them date back to the introduction of temporal difference learning, but
have become much more powerful and sophisticated since 2014. Here we present
the basics of the modern view.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:19.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
10.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;As usual, first we fully develop the ideas for
state values and prediction, then extend them to action values and control. We
develop them first for the on-policy case then extend them to off-policy
learning. Our treatment pays special attention to the case of linear function
approximation, for which the results with eligibility traces are stronger. All
these results apply also to the tabular and state aggregation cases because
these are special cases of linear function approximation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.05pt;
margin-left:1.0pt;text-indent:0cm;line-height:15.5pt;mso-line-height-rule:exactly;
mso-list:l70 level1 lfo52;tab-stops:45.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark188&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;font-size:15.5pt;
font-family:&#34;Georgia&#34;,&#34;serif&#34;;mso-fareast-font-family:Georgia;mso-bidi-font-family:
Georgia;font-weight:normal&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;12.1&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;The A-return&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.15pt;
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   &lt;tr&gt;
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    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:
    0cm;margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:
    inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=0ptExact6&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;rewards plus the discounted
    (7.1). approximator, is&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;In Chapter 7 we defined an n-step
return as the sum of the first n estimated value of the state reached in n
steps, each appropriately The general form of that equation, for any
parameterized function&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.25pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
10.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t:t+n = &lt;sup&gt;R&lt;/sup&gt;t+i
+ &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; +&#39; &#39; &#39; +&lt;sup&gt;7&lt;/sup&gt;^ &lt;sup&gt;iR&lt;/sup&gt;t+n + &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;(S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+n&lt;sup&gt;,w&lt;/sup&gt;t+n-i), &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; ^ &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; &amp;lt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;
&lt;sup&gt;-&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span lang=EN-US&gt;U.&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; &lt;sup&gt;(12&lt;/sup&gt;.&lt;sup&gt;1)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;We noted in Chapter 7 that each
n-step return, for n &amp;gt; 1, is a valid update target for a tabular learning
update, just as it is for an approximate SGD learning update such as (9.6).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:10.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Now we note that a valid update
can be done not just toward any n-step return, but toward any &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;average&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; of n-step returns. For example, an update can be done toward a
target that is half of a two-step return and half of a four-step return:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l79 level1 lfo53;
tab-stops:7.95pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;Gt&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUffb&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; + 2
Gt:t+&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;4&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;. Any set of n-step returns can be averaged in
this way, even an infinite set, as long as the weights on the component returns
are positive and sum to 1. The composite return possesses an error reduction
property similar to that of individual n-step returns (7.3) and thus can be
used to construct updates with guaranteed convergence properties. Averaging
produces a substantial new range of algorithms. For example, one could average
one-step and infinite-step returns to obtain another way of interrelating TD
and Monte Carlo methods. In principle, one could even average experience-based
updates with DP updates to get a simple combination of experience-based and
model-based methods (cf. Chapter &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;).&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:8.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;An update that averages simpler
component updates is called a &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;com&amp;shy;pound update&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;. The backup diagram for a compound update consists
of the backup diagrams for each of the component updates with a hori&amp;shy;zontal line
above them and the weighting fractions below. For example, the compound update
for the case mentioned at the start of this sec&amp;shy;tion, mixing half of a two-step
return and half of a four-step return, has the diagram shown to the right. A
compound update can only be done when the longest of its component updates is
complete. The update at the right, for example, could only be done at time &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; + 4 for the estimate formed at time t. In general
one would like to limit the length of the longest component backup because of
the corresponding delay in the updates.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The TD(A) algorithm can be understood
as one particular way of averaging n-step backups. This average contains all
the n-step backups, each weighted proportional to A&lt;sup&gt;n-1&lt;/sup&gt;, where A G
[0,1], and normalized by a factor of 1 - A to ensure that the weights sum to 1
(see Figure 12.1).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:8.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;The resulting backup is toward a return, called the &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;X-return&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;, defined in its state-based form by&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection281&gt;

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lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
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&lt;div class=WordSection282&gt;

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lang=EN-US&gt;Figure 12.2 further illustrates the weighting on the sequence of
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&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:20.95pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection287&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;terminal state has been reached, all subsequent n-step returns are
equal to G&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;. If we want, we can
separate these post-termination terms from the main sum, yielding&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.4pt;
margin-left:107.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=affff2&gt;&lt;span lang=EN-US&gt;t-&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t-i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:28.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.5pt;mso-line-height-rule:exactly;tab-stops:right 79.35pt center 87.05pt left 94.0pt 130.7pt right 399.8pt;
background:transparent&#39;&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; =&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;(1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;-&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;A)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;n i&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU7&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;t+n &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;+ &lt;sup&gt;a&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU7&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;\CD\F6&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span style=&#39;font-size:9.5pt;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(12&lt;/sup&gt;.&lt;sup&gt;3)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.25pt;
margin-left:107.0pt;text-indent:0cm;line-height:12.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;n=i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.2pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;as indicated in the figures. This equation makes it clearer what
happens when A = 1. In this case the main sum goes to zero, and the remaining
term reduces to the conventional return, G&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;. Thus, for A = 1, backing up according to the A-return is a Monte
Carlo algorithm. On the other hand, if A = 0, then the A-return reduces to G&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU7&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;t+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;, the one-step return. Thus, for A = &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;, backing up according to the A-return is a one-step
TD method.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:2.8pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.2pt;mso-line-height-rule:exactly;tab-stops:right 399.8pt;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Exercise 12.1 Just as the return can be written
recursively in terms of the first reward and itself one-step later (3.3), so
can the A-return. Derive the analogous recursive relationship from (&lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;) and (&lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;).&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;Exercise 12.2 The parameter A characterizes how fast the exponential
weighting in Figure 12.2 falls off, and thus how far into the future the
A-return algorithm looks in determining its backup. But a rate factor such as A
is sometimes an awkward way of characterizing the speed of the decay. For some
purposes it is better to specify a time constant, or half-life. What is the
equation relating A and the half-life, &lt;/span&gt;&lt;/span&gt;&lt;span class=2f1&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=2f1&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;\A1\F6&lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU7&gt;&lt;span style=&#39;font-size:11.5pt;
mso-ansi-language:ZH-TW&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;,&lt;/span&gt;&lt;span lang=EN-US&gt;the time by which the
weighting sequence will have fallen to half of its initial value? \A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;We are now ready to define our first learning
algorithm based on the A-return: the &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;off-line
X-return algorithm.&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; As an
off-line algorithm, it makes no changes to the weight vector during the
episode. Then, at the end of the episode, a whole sequence of off-line updates
are made according to our usual semi-gradient rule, using the A-return as the
target:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.55pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;tab-stops:right 399.8pt;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;t+i &lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU6&gt;&lt;span
style=&#39;font-size:9.5pt&#39;&gt;ʿ&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;+ a G&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;^&lt;sup&gt;s&lt;/sup&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;- v(S&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;,w&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
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    &lt;p class=343 align=left style=&#39;margin:0cm;margin-bottom:.0001pt;text-align:
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    class=340ptExact1&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:
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    style=&#39;font-size:11.0pt;letter-spacing:0pt;font-weight:normal&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span
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    0pt&#39;&gt;-return algorithm&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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&lt;/v:shape&gt;&lt;a name=bookmark189&gt;&lt;span lang=EN-US&gt;a&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;a&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:19.85pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;Figure 12.3: 19-state Random walk results (Example 7.1): Performance
of the offline X- return algorithm alongside that of the n-step TD methods. In
both case, intermediate values of the bootstrapping parameter (X or n)
performed best. The results with the off-line X-return algorithm are slighly
better at the best values of &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; and X, and at high a.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Chapter 7. There we assessed effectiveness on a
19-state random walk task (Example 7.1). Figure 12.3 shows the performance of
the off-line &lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU6&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;-return algorithm on this task alongside that of the
n-step methods (repeated from Figure 7.2). The experiment was just as described
earlier except that for the X-return algorithm we varied X instead of n. The
performance measure used is the estimated root-mean-squared error between the
correct and estimated values of each state measured at the end of the episode,
averaged over the first 10 episodes and the 19 states. Note that overall
performance of the off-line X-return algorithms is comparable to that of the
n-step algorithms. In both cases we get best performance with an intermediate
value of the bootstrapping parameter, n for n-step methods and &lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU6&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;for the offline &lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU6&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;-return algorithm.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.3pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;The approach that we have been taking so far is what
we call the theoretical, or &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;forward&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;, view of a learning algorithm. For each state visited, we look
forward in time to all the future rewards and decide how best to combine them.
We might imagine ourselves riding the stream of states, looking forward from
each state to determine its update, as suggested by Figure 12.4. After looking
forward from and updating&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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.05pt&#39;&gt;

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 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
    inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=0ptExact6&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;one state, we move on to the
    next again. Future states, on the other from each vantage point preceding&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;a name=bookmark190&gt;&lt;span class=10Georgia&gt;&lt;span lang=EN-US
style=&#39;font-size:15.5pt;font-weight:normal&#39;&gt;12.2&lt;/span&gt;&lt;/span&gt;&lt;span class=101&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;TD(A)&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;TD&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUffb&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A3\A9&lt;/span&gt;&lt;span lang=EN-US&gt;is
one of the oldest and most widely used algorithms in reinforcement learning. It
was the first algorithm for which a formal relationship was shown between a
more theoretical forward view and a more computational congenial backward view
using eligibility traces. Here we will show empirically that it approximates
the off-line X-return algorithm presented in the previous section.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;TD&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUffb&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A3\A9&lt;/span&gt;&lt;span lang=EN-US&gt;improves
over the off-line &lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUffb&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;-return algorithm in
three ways. First it updates the weight vector on every step of an episode
rather than only at the end, and thus its estimates may be better sooner.
Second, its computations are equally distributed in time rather that all at the
end of the episode. And third, it can be applied to continuing problems rather
than just episodic problems. In this section we present the semi-gradient
version of TD&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUffb&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A3\A9&lt;/span&gt;&lt;span lang=EN-US&gt;with
function approximation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;With
function approximation, the eligibility trace is a vector et G R&lt;sup&gt;d&lt;/sup&gt;
with the same number of components as the weight vector wt. Whereas the weight
vector is a long-term memory, accumulating over the lifetime of the system, the
eligibility trace is a short-term memory, typically lasting less time than the
length of an episode. Eligibility traces assist in the learning process; their
only consequence is that they affect the weight vector, and then the weight
vector determines the estimated value.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;In TD&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUffb&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;\A3\AC&lt;span lang=EN-US&gt;the eligibility trace
vector is initialized to zero at the beginning of the episode, is incremented
on each time step by the value gradient, and then fades away by yX:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:31.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;
tab-stops:right 400.35pt;background:transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;i&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; = &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(12
5)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.75pt;
margin-left:31.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:right 388.85pt 388.85pt;
background:transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;i + &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;v(St,&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t),&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;0
&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;&amp;lt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;&amp;lt; &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;T,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&#39;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;where &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; is the discount rate and &lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUfff&gt;&lt;span
style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;is
the parameter introduced in the previous section. The eligibility trace keeps
track of which components of the weight vector have contributed, positively or
negatively, to recent state valuations, where \A1\B0recent\A1\B1 is defined in terms &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;A. The trace is said to indicate the eligibility
of each component of the weight vector for undergoing learning changes should a
reinforcing event occur. The reinforcing events we are concerned with are the
moment-by-moment one-step TD errors. The TD error for state-value prediction is&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.25pt;
margin-left:31.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:right 400.35pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;^t == Rt+i + &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUffb&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\D0\C4&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;(St+i,&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t) &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;v(St,&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t).&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.15pt;
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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=0ptExact6&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(12.7)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;In TD(X), the weight vector is
updated on each step proportional to the scalar TD error and the vector
eligibility trace:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=127 style=&#39;margin-top:0cm;line-height:12.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a name=bookmark191&gt;&lt;span class=1295pt&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark191&#39;&gt;&lt;span class=1295pt&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark191&#39;&gt;&lt;span class=1295pt&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t + a^t &lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark191&#39;&gt;&lt;span class=1295pt&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection288&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:17.5pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=23 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=23 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:17.5pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_51&#34; o:spid=&#34;_x0000_i1070&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image134&#34;
   style=&#39;width:398.25pt;height:18pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image133.jpg&#34;
    o:title=&#34;image134&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:7.3pt;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:12.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Input: the policy n to be
evaluated&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
14.0pt;line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Input: a differentiable function v : S+ x R&lt;sup&gt;d&lt;/sup&gt;
R such that v(terminal,-) = 0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Initialize value-function weights
w arbitrarily (e.g., w = 0)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Repeat (for each episode):&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Initialize S&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:266.65pt;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;e 0&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(An
n-dimensional vector)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Repeat (for each step of episode):&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;.Choose &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU6&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;n(-|S)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:218.0pt;margin-bottom:
0cm;margin-left:30.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f2&gt;&lt;span
lang=EN-US&gt;.Take&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; action A,
observe R, S&lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;f&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;.e \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Ae + V&lt;sup&gt;(&lt;/sup&gt;0(S,w)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;.8&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; \A1\AA R + &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;v(S&lt;sup&gt;;&lt;/sup&gt;,w) - v(S,w)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.15pt;
margin-left:30.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;. w \A1\AA w + a&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; e&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:31.25pt;
margin-left:30.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;until &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;S&lt;sup&gt;f&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; is terminal&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Complete pseudocode for TD(A) is given in the box,
and a picture of its operation is suggested by Figure 12.5.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;TD(A) is oriented backward in
time. At each moment we look at the current TD error and assign it backward to
each prior state according to how much that state contributed to the current
eligibility trace at that time. We might imagine ourselves riding along the stream
of states, computing TD errors, and shouting them back to the previously
visited states, as suggested by Figure 12.5. Where the TD error and traces come
together, we get the update given by (12.7).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.25pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
14.0pt;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;To better understand the backward view, consider what
happens at various values of A. If A = 0, then by (12.5) the trace at t is
exactly the value gradient corresponding&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:150.25pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=200 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=200 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:150.25pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_52&#34; o:spid=&#34;_x0000_i1069&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image135&#34;
   style=&#39;width:335.25pt;height:150pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image134.jpg&#34;
    o:title=&#34;image135&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=344 style=&#39;text-align:justify;text-justify:inter-ideograph;
  line-height:12.0pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-height:150.25pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US&gt;Figure 12.5:
  The backward or mechanistic view. Each update depends on the current TD error
  combined with eligibility traces of past events.&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Courier New&#34;;
mso-fareast-font-family:&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;
mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;to St. Thus the TD(A) update (12.7) reduces to the
one-step semi-gradient TD update treated in Chapter 9 (and, in the tabular
case, to the simple TD rule (6.2)). This is why that algorithm was called
TD(0). In terms of Figure 12.5, TD(0) is the case in which only the one state
preceding the current one is changed by the TD error. For larger values of A,
but still A &amp;lt; 1, more of the preceding states are changed, but each more
temporally distant state is changed less because the corresponding eligibility trace
is smaller, as suggested by the figure. We say that the earlier states are
given less &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;credit&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;
for the TD error.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;If A = 1, then the credit given to
earlier states falls only by &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; per
step. This turns out to be just the right thing to do to achieve Monte Carlo
behavior. For example, remember that the TD error, &amp;amp;, includes an
undiscounted term of Rt+i. In passing this back k steps it needs to be
discounted, like any reward in a return, by &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;k&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;, which is just what the falling
eligibility trace achieves. If A = 1 and &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; =1, then the eligibility traces do not decay at all with time. In
this case the method behaves like a Monte Carlo method for an undiscounted,
episodic task. If A = 1, the algorithm is also known as TD(1).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
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transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;TD(1) is a way of implementing
Monte Carlo algorithms that is more general than those presented earlier and
that significantly increases their range of applicability. Whereas the earlier
Monte Carlo methods were limited to episodic tasks, TD(1) can be applied to
discounted continuing tasks as well. Moreover, TD(1) can be performed
incrementally and on-line. One disadvantage of Monte Carlo methods is that they
learn nothing from an episode until it is over. For example, if a Monte Carlo
control method takes an action that produces a very poor reward but does not
end the episode, then the agent\A1\AFs tendency to repeat the action will be
undiminished during the episode. On-line TD(1), on the other hand, learns in an
n-step TD way from the incomplete ongoing episode, where the n steps are all
the way up to the current step. If something unusually good or bad happens
during an episode, control methods based on TD(1) can learn immediately and
alter their behavior on that same episode.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
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transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;It is revealing to revisit the
19-state random walk example (Example 7.1) to see how well TD(A) does in
approximating the off-line A-return algorithm. The results for both algorithms
are shown in Figure 12.6. For each A value, if a is selected optimally for it
or smaller, then the two algorithms perform virtually identically. If a is
chosen larger, however, then the A-return algorithm is only a little worse
whereas TD(A) is much worse and may even be unstable. This is not a terrible
problem for TD(A) on this problem, as these higher parameter values are not
what one would want to use anyway, but for other problems it can be a
significant weakness.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Linear TD(A) has been proved to
converge in the on-policy case if the step-size parameter is reduced over time
according to the usual conditions (2.7). Just as discussed in Section 9.4,
convergence is not to the minimum-error weight vector, but to a nearby weight
vector that depends on A. The bound on solution quality presented in that
section (9.13) can now be generalized to apply to any A. For the&lt;br clear=all
style=&#39;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;continuing
discounted case,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;X&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
    inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=0ptExact6&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;That is, the asymptotic error is
    As X approaches &lt;/span&gt;&lt;/span&gt;&lt;span class=3ptExact0&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:3.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
    class=0ptExact6&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:
    0pt&#39;&gt;, the bound&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;no more than &lt;sup&gt;i-&lt;/sup&gt;-^ times
the smallest possible error. approaches the minimum error (and it is loosest at
&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUfff&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:
ZH-TW&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;= 0). In practice, however,&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUfff&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;=1 is often the poorest choice, as will be
illustrated later in Figure 12.14.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.0pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 401.0pt;
background:transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;Exercise 12.3 &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Some
insight into how TD(X) can closely approximate the off-line X-retum algorithm
can be gained by seeing that the latter\A1\AFs error term (from (12.4)) can be
written as the sum of TD errors (12.6) for a single fixed &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;. Show this, following the pattern of (&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;),
and using the recursive relationship for the you obtained in Exercise 12.1.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:19.55pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;&#39;&#39;Exercise 12.4 &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;Although TD(X) only approximates the &lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUffb&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C8\EB&lt;span lang=ZH-TW&gt;-&lt;/span&gt;\B7Źϴ\F2&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;algorithm
when done online, perhaps there\A1\AFs a slightly different TD method that would
maintain the equivalence even in the on-line case. One idea is to define the TD
error instead as ^t == Rt+i + &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Vt(St+i)
- Vt&lt;sub&gt;-&lt;/sub&gt;i(St). Show that in this case the modified TDC&#39;) algorithm
would then achieve exactly&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.65pt;
margin-left:31.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;AVt(St) = a[G&lt;sub&gt;t&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUffb&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;-Vt-i(St)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
right 401.0pt;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;even
in the case of on-line updating with large a. In what ways might this modified
TD(X) be better or worse than the conventional one described in the text?
Describe an experiment to assess the relative merits of the two algorithms.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br
clear=all style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l99 level1 lfo54;tab-stops:44.9pt 44.9pt;background:transparent&#39;&gt;&lt;a
name=bookmark192&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;12.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;n-step Truncated A-return
Methods&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;The off-line A-return algorithm is an important
ideal, but it\A1\AFs of limited utility be&amp;shy;cause it uses the A-return (12.2), which
is not known until the end of the episode. In the continuing case, the A-return
is technically never known, as it depends on n- step returns for arbitrarily
large n, and thus on rewards arbitrarily far in the future. However, the
dependence gets weaker for long-delayed rewards, falling by &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;A for each step of delay. A natural approximation
then would be to truncate the sequence after some number of steps. Our existing
notion of n-step returns provides a natural way to do this in which the missing
rewards are replaced with estimated values.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;In general, we define the &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;truncated&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; A&lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span lang=EN-US&gt;-return&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; for time t, given data only up to some later
horizon, h, as&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.4pt;
margin-left:114.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;h-t-i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;
tab-stops:76.7pt 136.25pt right 13.0cm;background:transparent&#39;&gt;&lt;span
class=-2pt&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;\A3\BA&lt;span
lang=EN-US&gt;h&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; =&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt; - A)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt; iG&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUffb&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t+n + &lt;sup&gt;Ah t iG&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUffb&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;h,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; ^ &lt;sup&gt;t&lt;/sup&gt; &amp;lt; &lt;sup&gt;h&lt;/sup&gt; ^ &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;T.&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; &lt;sup&gt;(12&lt;/sup&gt;.&lt;sup&gt;9)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.5pt;
margin-left:114.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;n=i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;If you compare this equation with the A-return
(12.3), it is clear that the horizon &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span
lang=EN-US&gt;h&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; is playing the
same role as was previously played by T, the time of termination. Whereas in
the A-return there is a residual weighting given to the true return, here it is
given to the longest available n-step return, the (h-t)-step return (Figure
12.2).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;The truncated A-return immediately gives rise to a
family of n-step A-return algo&amp;shy;rithms similar to the n-step methods of Chapter
7. In all these algorithms, updates are delayed by n steps and only take into
account the first n rewards, but now all the k-step returns are included for &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; &amp;lt; k &amp;lt; n (whereas the earlier n-step
algorithms used only the n-step return), weighted geometrically as in Figure
12.2. In the state- value case, this family of algorithms is known as truncated
TD(A), or TTD(A). The compound backup diagram, shown in Figure 12.7, is similar
to that for TD(A) (Fig&amp;shy;ure &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;) except that the longest component backup is n
steps rather than all the way to the end of the episode. TTD(A) is defined by
(cf. (9.14)):&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.75pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:315.6pt;
background:transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t+n = &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t+n-i + a G^&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUffb&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t+&amp;#8222; - v(St,&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t+n-i) Vv(St,&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t+&amp;#8222;-i),&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;0
&amp;lt; t &amp;lt; T. (12.10)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;This algorithm can be implemented efficiently so
that per-step computation does not scale with n (though of course memory must).
Much as in n-step TD methods, no updates are made on the first n - &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; time steps, and n - &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; additional updates are made upon termination.
Efficient implementation relies on the fact that the k-step A-return can be
written exactly as&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.45pt;
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&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
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&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection291&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:28.25pt;
margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Figure 12.7: The backup diagram
for truncated TD(A).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:9.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 398.9pt;
background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Exercise 12.5 Several
times in this book (often in exercises) we have established that returns can be
written as sums of TD errors if the value function is held constant. Why is
(12.11) another instance of this? Prove (12.11).&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:45.35pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Exercise 12.6 The parameter A characterizes how fast
the exponential weighting in Figure 12.2 falls off, and thus how far into the
future the A-return algorithm looks in determining its backup. But a rate
factor such as A is sometimes an awkward way of characterizing the speed of the
decay. For some purposes it is better to specify a time constant, or half-life.
What is the equation relating A and the half-life, t&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\F6&lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU6&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;,&lt;/span&gt;&lt;span lang=EN-US&gt;the time by
which the weighting sequence will have fallen to half of its initial value? \A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:16.05pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l99 level1 lfo54;tab-stops:44.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark194&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;12.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Redoing Updates: The Online
A-return Algorithm&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Choosing the truncation
parameter n in Truncated TD(A) involves a tradeoff. n should be large so that
the method closely approximates the off-line A-return al&amp;shy;gorithm, but it should
also be small so that the updates can be made quicker and influence behavior
quicker. Can we get the best of both? Well, yes, in principle we can, albeit at
the cost of computational complexity.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The idea is
that, on each time step as you gather a new increment of data, you go back and
redo all the updates since the beginning of the current episode. The new
updates will be better than the ones you previously made because now they can
take into account the time step\A1\AFs new data. That is, the updates are always
towards an n-step truncated A-return target, but they always use the latest
horizon. In each pass over that episode you can use a slightly longer horizon
and obtain slightly better&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:8.8pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;results. Recall that the n-step truncated A-return is defined by&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=901 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:111.0pt;margin-bottom:.0001pt;line-height:8.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;h-t&lt;/span&gt;&lt;span
class=90Batang&gt;&lt;span lang=EN-US style=&#39;font-style:normal&#39;&gt;-1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;i&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
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&lt;/span&gt;&lt;/i&gt;&lt;/p&gt;

&lt;div class=WordSection292&gt;

&lt;p class=MsoNormal style=&#39;line-height:4.6pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:3.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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&lt;/v:shape&gt;&lt;span class=28pt&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;(1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
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lang=EN-US&gt; iG&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
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&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection294&gt;

&lt;p class=MsoNormal style=&#39;margin-top:3.9pt;margin-right:0cm;margin-bottom:3.9pt;
margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection295&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Let us step through how this
target could ideally be used if computational com&amp;shy;plexity was not an issue. The
episode begins with an estimate at time 0 using the weights &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;o from the end of the previous episode. Learning
begins when the data horizon is extended to time step 1. The target for the
estimate at step 0, given the data up to horizon &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;, could only be the one-step return &lt;/span&gt;&lt;/span&gt;&lt;span
class=-1pt1&gt;&lt;span lang=EN-US&gt;Go&lt;/span&gt;\A3\BA&lt;span lang=EN-US&gt;i,&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; which includes Ri and bootstraps from the
estimate v(Si,&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;o).
In (12.9), this is exactly what &lt;/span&gt;&lt;/span&gt;&lt;span class=-2pt&gt;&lt;span
lang=EN-US&gt;Gq&lt;/span&gt;\A3\BA&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; is, taking the last part of the equation. Using this update target,
we construct &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;i. Then, after
advancing the data horizon to step 2, what do we do? We have new data in the
form of R&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; and S&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;, as well as the new &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;i, so now we can construct a better update target Gq&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span style=&#39;font-size:9.0pt&#39;&gt;\A3\BA&lt;span lang=EN-US&gt;2&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; for the first update from So as well as a better
update target Gq&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span style=&#39;font-size:9.0pt&#39;&gt;\A3\BA&lt;span
lang=EN-US&gt;2&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; for the
second update from Si. We perform both of these updates in sequence to produce &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;. Now we advance the horizon to step 3 and repeat,
going all the way back to produce three new updates and finally &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;3&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;, and so on.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:10.55pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;This
conceptual algorithm involves multiple passes over the episode, one at each
horizon, each generating a different sequence of weight vectors. To describe it
clearly we have to distinguish between the weight vectors computed at the
different horizons. Let us use &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;wf &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;to denote the weights used to generate the value at time t in the
sequence at horizon h. The first weight vector in each sequence is that
inherited from the previous episode, &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;sup&gt;h&lt;/sup&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;== &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;o, and the last weight vector in each sequence defines the ultimate
weight-vector sequence of the algorithm &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;wh =&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;wh&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;. At the final
horizon h = T we obtain the final weights wt == &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;wT &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;which will be passed on to form the initial
weights &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;o of the next episode. With these conventions, the
three first sequences described in the previous paragraph can be given
explicitly:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;
tab-stops:right 88.95pt;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;h = &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; :&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUffb&gt;&lt;span
lang=EN-US style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;]&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUffb&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BB&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; = w^ + a Gq&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;sub&gt;&lt;span
style=&#39;font-size:9.0pt&#39;&gt;\A3\BA&lt;span lang=EN-US&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; - v(So,w&lt;sup&gt;i&lt;/sup&gt;) Vv(So,w&lt;sup&gt;i&lt;/sup&gt;),&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection296&gt;

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&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Figure 12.8: 19-state Random walk
results (Example 7.1): Performance of online and off&amp;shy;line X-return algorithms.
The performance measure here is the MSVE at the end of the episode, which
should be the best case for the off-line algorithm. Nevertheless, the on-line
algorithm performs subtlely better. For comparison, the X = 0 line is the same
for both methods.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:.55pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;This update, together with wt == &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;w\&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; defines the &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;online X-return
algorithm.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:21.0pt;margin-bottom:18.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;The online X-return algorithm is fully online,
determining a new weight vector wt at each step t during an episode, using only
information available at time t. It\A1\AFs main drawback is that it is
computationally complex, passing over the entire episode so far on every step.
Note that it is strictly more complex than the off-line X-return algorithm,
which passes through all the steps at the time of termination but does not make
any updates during the episode. In return, the online algorithm can be expected
to perform better than the off-line one, not only during the episode when it
makes an update while the off-line algorithm makes none, but also at the end of
the episode because the weight vector used in bootstrapping (in G;^) has had a
greater number of informative updates. This effect can be seen if one looks
carefully at Figure 12.8, which compares the two algorithms on the 19-state
random walk task.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l99 level1 lfo54;tab-stops:45.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark196&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;12.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;True Online TD(A)&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:21.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;The on-line X-return algorithm just presented is
currently the best performing temporal- difference algorithm. As presented,
however, it is very complex. Is there a way to invert this forward-view
algorithm to produce an efficient backward-view algorithm using eligibility
traces? It turns out that there is indeed an exact computationally congenial
implementation of the on-line X-return algorithm for the case of linear
function approximation. This implementation is known as the true online TD(X)
algorithm because it is \A1\B0truer\A1\B1 to the idea of the online TD(X) algorithm,
truer even than the TD(X) algorithm itself.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:21.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The derivation of true on-line
TD(X) is a little too complex to present here (see the next section and the
appendix to the paper by van Seijen et al., 2016) but its&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:15.0pt;margin-bottom:
0cm;margin-left:0cm;margin-bottom:.0001pt;text-align:left;line-height:13.7pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;strategy is simple. The sequence of weight vectors produce by the
on-line A-return algorithm can be arranged in a triangle:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;One row of this triangle is produced
on each time step. Really only the weight vectors on the diagonal, the w^ need
to be produced by the algorithm. The first, w&lt;sup&gt;0&lt;/sup&gt;, is the input, the
last, w^, is the output, and each weight vector along the way, wf, plays a role
in bootstrapping in the n-step returns of the updates. In the final algorithm
the diagonal weight vectors are renamed without a superscript, wt == w^. The
strategy then is to find a compact, efficient way of computing each &lt;/span&gt;&lt;/span&gt;&lt;span
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class=2f&gt;&lt;span lang=EN-US&gt; from the one before. If this is done, for the linear
case in which {)(s,w) = w&lt;sup&gt;T&lt;/sup&gt;x(s), true online TD(A) algorithm:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;wt&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;= wt + a&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;tet + a
(w&lt;sub&gt;t&lt;/sub&gt;&lt;sup&gt;T&lt;/sup&gt;xt - w^&lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU7&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;\A1\BE&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;xt) (et
- xt),&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;where we have used the shorthand xt == x(St), &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;t is defined as in TD(A) (12.6), and et is defined by&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;a name=bookmark197&gt;&lt;span lang=EN-US&gt;yAet-i + &lt;/span&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark197&#39;&gt;&lt;span class=128pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; - aYAe^xt) xt.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(12.16)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;This algorithm has been proven to produce exactly the
same sequence of weight vec&amp;shy;tors, wt, 0 &amp;lt; t &amp;lt; T, as the on-line A-return
algorithm (van Siejen et al. 2016). Thus the results on the random walk task on
the left of Figure 12.8 are also its results on that task. Now, however, the
algorithm is much less expensive. The memory re&amp;shy;quirements of true online TD(A)
are identical to those of conventional TD(A), while the per-step computation is
increased by about 50% (there is one more inner prod&amp;shy;uct in the
eligibility-trace update). Overall, the per-step computational complexity
remains of O(d), the same as TD(A). Pseudocode for the complete algorithm is
given in the box on the next page.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:14.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;The eligibility trace (12.16) used in true online TD(A)
is called a &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;dutch trace&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; to distinguish it from the trace (12.5) used in TD(A), which is
called an &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;accumulating trace.&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; Earlier work often used a third kind of trace called the replacing
trace, defined only for the tabular case or binary feature vectors such as are
produced by tile coding. The replacing trace is defined on a
component-by-component basis depending on whether the component of the feature
vector was &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; or &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.75pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
22.0pt;mso-line-height-rule:exactly;tab-stops:right 401.2pt;background:transparent&#39;&gt;&lt;span
class=2MingLiU9&gt;&lt;span style=&#39;font-size:22.0pt;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMSa&gt;&lt;span lang=EN-US style=&#39;font-size:10.0pt&#39;&gt;{&lt;/span&gt;&lt;/span&gt;&lt;span
class=2CenturySchoolbook5&gt;&lt;span lang=EN-US style=&#39;font-size:22.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;YAei,t-i ot&lt;/span&gt;&lt;/span&gt;&lt;span
class=2CenturySchoolbook5&gt;&lt;span lang=EN-US style=&#39;font-size:22.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;wi&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(12&lt;/sup&gt;.&lt;sup&gt;17)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Now, however, use of the replacing trace it
deprecated; a dutch trace should almost always be used instead.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection302&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
12.9pt;margin-left:3.0pt;text-align:left;line-height:12.0pt;mso-line-height-rule:
exactly;background:black&#39;&gt;&lt;span class=2f0&gt;&lt;span lang=EN-US&gt;True Online TD(A)
for estimating w&lt;sup&gt;T&lt;/sup&gt;x ^ Vn&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.3pt;
margin-left:3.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Input: the policy n
to be evaluated&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:76.0pt;margin-bottom:0cm;
margin-left:3.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.7pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;Initialize value-function weights &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;arbitrarily (e.g., &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;) Repeat (for each episode):&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:3.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.7pt;
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 mso-wrap-distance-bottom:0;mso-position-horizontal:absolute;
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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=2f9 align=left style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;
    text-align:left;line-height:13.7pt;mso-line-height-rule:exactly;background:
    transparent&#39;&gt;&lt;span class=20ptExact4&gt;&lt;span lang=EN-US style=&#39;font-size:11.0pt;
    letter-spacing:0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=0ptExact6&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(an n-dimensional vector)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-bottom:27.75pt;text-indent:0cm;line-height:
    13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=0ptExact6&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:
    0pt&#39;&gt;(a scalar temporary variable)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=0ptExact6&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;of the next state)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Initialize state and obtain
initial feature vector &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;e &lt;/span&gt;&lt;/span&gt;&lt;span class=8pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=208 style=&#39;margin-left:3.0pt;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a name=bookmark198&gt;&lt;span class=205&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;V&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;old&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark198&#39;&gt;&lt;span class=206&gt;&lt;span lang=EN-US
style=&#39;font-style:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark198&#39;&gt;&lt;span
class=20Batang0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-style:normal&#39;&gt;\A1\AA
&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark198&#39;&gt;&lt;span
class=20Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-style:normal&#39;&gt;0&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;Repeat (for each step of episode):&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:3.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;| Choose &lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf4&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUf5&gt;&lt;span
style=&#39;font-size:7.5pt;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:3.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;tab-stops:15.5pt;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;| Take action A, observe R, &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;x!&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; (feature vector | &lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf4&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf5&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;sup&gt;T&lt;/sup&gt;x &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;|&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSff1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;f&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;sup&gt;T&lt;/sup&gt;x&lt;sup&gt;;&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:44.35pt;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;|&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;5 \A1\AA R + &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;W - V&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:151.0pt;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;tab-stops:44.35pt;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;| &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; - a&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e&lt;sup&gt;T&lt;/sup&gt;x) x &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;| &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;+ a(5 + V - Vold)&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;- a(V - V&amp;gt;ld)&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;x &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;|&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=-1pt1&gt;&lt;span lang=EN-US&gt;Vold&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; \A1\AA V&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;&#39;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;| &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;x &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;x&#39;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:30.3pt;
margin-left:30.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;until &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;x&#39; &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=8pt0&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;(signaling arrival at a
terminal state)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.55pt;
margin-left:3.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l99 level1 lfo54;tab-stops:44.35pt;background:transparent&#39;&gt;&lt;a
name=bookmark199&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;12.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Dutch Traces in Monte Carlo
Learning&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:3.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Although eligibility traces are
closely associated historically with TD learning, in fact they have nothing to
do with it. In fact, eligibility traces arise even in Monte Carlo learning, as
we show in this section. We show that the linear MC algorithm (Chapter 9),
taken as a forward view, can be used to derive an equivalent yet com&amp;shy;putationally
cheaper backward-view algorithm using dutch traces. This is the only
equivalence of forward- and backward-views that we explicitly demonstrate in
this book. It gives some of the flavor of the proof of equivalence of true
online TD(A) and the on-line A-return algorithm, but is much simpler.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.35pt;
margin-left:3.0pt;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;The linear version
of the gradient Monte Carlo prediction algorithm (page 216) makes the following
sequence of updates, one for each time step of the episode:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.05pt;
margin-left:30.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 403.45pt 403.45pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;wt+i == wt + a G -
wfxt xt,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;0
&amp;lt; t &amp;lt; T.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(12.18)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:30.15pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;To make the example a simpler, we assume here that
the return G is a single reward received at the end of the episode (this is why
G is not subscripted by time) and that there is no discounting. In this case
the update is also known as the least mean square (LMS) rule. As a Monte Carlo
algorithm, all the updates depend on the final reward/return, so none can be
made until the end of the episode. The MC algorithm is an offline algorithm and
we do not seek to improve this aspect of it. Rather we seek merely an
implementation of this algorithm with computational advantages. We will still
update the weight vector only at episode\A1\AFs end, but we will do some&lt;br
clear=all style=&#39;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;computation
during each step of the episode and less at its end. This will give a more
equal distribution of computation\A1\AAO(d) per step\A1\AAand also remove the need to
store the feature vectors at each step for use later at the end of each
episode. Instead, we will introduce an additional vector memory, the
eligibility trace, keeping in it a summary of all the vectors seen so far. This
will be sufficient, at episode\A1\AFs end to efficiently recreate exactly the same
overall update as the sequence of MC updates (12.18).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:.15pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=affff2&gt;&lt;span lang=EN-US&gt;wt = wt&lt;sub&gt;-&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;i + a (G - w&lt;sub&gt;r&lt;/sub&gt;_ixr_i) &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff2&gt;&lt;span lang=EN-US&gt;xt&lt;sub&gt;-&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:27.0pt;margin-bottom:0cm;
margin-left:54.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:22.1pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=affff2&gt;&lt;span
lang=EN-US&gt;=wt&lt;sub&gt;-&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;i +
axT&lt;sub&gt;-&lt;/sub&gt;i (-xj_iwr_i) + aGxT&lt;sub&gt;-&lt;/sub&gt;i =(I - axT_ixj_i) &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff2&gt;&lt;span lang=EN-US&gt;wt&lt;sub&gt;-&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;i + aGxT_i &lt;/span&gt;&lt;/span&gt;&lt;span class=affff2&gt;&lt;span lang=EN-US&gt;=Ft
_iwt&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; _i + aGxT _i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:67.0pt;margin-bottom:.0001pt;text-align:left;line-height:12.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;I - axtxj &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;is a &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;forgetting,&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; or &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;fading,&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;
matrix. Now, recursing,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;where Ft&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:27.0pt;margin-bottom:0cm;
margin-left:54.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:16.55pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;Ft_i (Ft_2wt_&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;aG&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;x^_&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;) + &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;Ga&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;x^_i
Ft _iFt-&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; wt-&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;aG &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;(Ft
-ixt-&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; + xt _i)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:54.0pt;text-indent:0cm;line-height:16.55pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;Ft_iFt-&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; (Ft&lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;swt&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;3&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;aG&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;x^-&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;3&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;) + &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;aG &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;(Ft-ixt-&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; + xt_i)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:20.65pt;
margin-left:54.0pt;text-indent:0cm;line-height:16.55pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Ft_iFt-&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;Ft_3wt-&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;3&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;aG &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;(Ft-iFt_&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;xt-&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;3&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; + Ft-ixt-&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; +
xt_i)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=98 align=center style=&#39;margin-top:0cm;margin-right:3.0pt;margin-bottom:
3.15pt;margin-left:0cm;text-align:center;line-height:9.5pt;mso-line-height-rule:
exactly;mso-pagination:lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark200&gt;&lt;span class=92&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=93&gt;&lt;span
lang=EN-US&gt; -i&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=98 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:54.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;mso-pagination:lines-together;
page-break-after:avoid;tab-stops:right 315.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark201&gt;&lt;span class=93&gt;&lt;span lang=EN-US&gt;Ft_&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark201&#39;&gt;&lt;span class=912pt&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=93&gt;&lt;span lang=EN-US&gt;Ft_&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark201&#39;&gt;&lt;span class=98pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark201&#39;&gt;&lt;span
class=912pt&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; \A1\F6 \A1\F6 \A1\F6 &lt;/span&gt;&lt;/span&gt;&lt;span
class=93&gt;&lt;span lang=EN-US&gt;Fowo &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:
bookmark201&#39;&gt;&lt;span class=912pt&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;+ aG&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=93&gt;&lt;span
lang=EN-US&gt;Ft_iFt-&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark201&#39;&gt;&lt;span
class=99pt0&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=93&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark201&#39;&gt;&lt;span
class=912pt&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\F6 \A1\F6 \A1\F6 &lt;/span&gt;&lt;/span&gt;&lt;span
class=93&gt;&lt;span lang=EN-US&gt;Fk+ix^&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.2pt;
margin-left:54.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 113.3pt 315.15pt 315.4pt left lined 315.4pt;
background:transparent&#39;&gt;&lt;a name=bookmark202&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;v&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;arci&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&#39;&lt;span
style=&#39;mso-tab-count:2&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;,&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.9pt;
margin-left:244.0pt;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;eT&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.75pt;
margin-left:54.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;tab-stops:right 408.25pt;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;aT &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;_&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;+ aG&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;eT &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;_&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;,&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(12.19)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:22.75pt;
margin-left:2.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;where &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;aT&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;_&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;eT&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;_&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;are the values at time T
-1 of two auxilary memory vectors that can be updated incrementally without
knowledge of G, and with O(d) complexity per time step. The &lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;et &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;vector is in fact a dutch-style eligibility trace. It
is initialized to &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;eo &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;=&lt;sup&gt;.&lt;/sup&gt;
&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;xo &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;and then updated according to&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:28.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:11.3pt;mso-line-height-rule:exactly;tab-stops:right 242.3pt;
background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;et ^=E &lt;sup&gt;F&lt;/sup&gt;t&lt;sup&gt;F&lt;/sup&gt;
t-&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;&#39; &#39; &#39; &lt;sup&gt;F&lt;/sup&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;x&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;k,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; &amp;lt; &lt;sup&gt;t&lt;/sup&gt; &amp;lt; &lt;sup&gt;T&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:27.0pt;margin-bottom:0cm;
margin-left:54.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:11.3pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;=0 &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;t-&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:41.0pt;margin-bottom:.0001pt;text-align:left;line-height:12.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;=^ FtFt-&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;\A1\F6 \A1\F6 \A1\F6 F&lt;sub&gt;fc&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;x&lt;sub&gt;fc&lt;/sub&gt; + axt&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
1.5pt;margin-left:85.0pt;text-align:left;line-height:12.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;,t&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;. . . &lt;/span&gt;&lt;/span&gt;&lt;span class=265pt&gt;&lt;span
lang=EN-US style=&#39;font-size:6.5pt&#39;&gt;&amp;#8226;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:54.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;k=0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:67.0pt;text-indent:0cm;line-height:14.15pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:27.0pt;margin-bottom:7.75pt;
margin-left:54.0pt;text-indent:0cm;line-height:14.15pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;F&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^ F&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;F&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;\A1\F6 \A1\F6 \A1\F6 F&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;sub&gt;&lt;span lang=EN-US&gt;fc&lt;/span&gt;&lt;/sub&gt;&lt;span lang=EN-US&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;sub&gt;&lt;span lang=EN-US&gt;fc&lt;/span&gt;&lt;/sub&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;+ ax&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t fc=o &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;F&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;+ x&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:54.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;(I - ax&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;xj ) e&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;+ x&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:229.0pt;margin-bottom:0cm;
margin-left:40.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:21.85pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;=et-i - axtx;et-i + xt =et-i - a (e^xt) xt + xt =et-i + (1 - ae^xt)
xt,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:7.35pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;which is the dutch
trace for the case of &lt;/span&gt;&lt;/span&gt;&lt;span class=8pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;= 1
(cf. Eq. 12.16). The at auxilary vector is initialized to ao = wo and then
updated according to&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.75pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:right 316.5pt 328.0pt center 333.75pt 343.1pt right 359.9pt 398.55pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;at = FtFt-i &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\AD&lt;/span&gt;&lt;span
lang=EN-US&gt;Fowo = Ftat-i = at-i - &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;xtxfat-i&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;1&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;&amp;lt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&amp;lt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;T.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;(12.20)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:21.35pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;The auxiliary
vectors, at and et, are updated on each time step &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t &amp;lt; T &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;and then, at time &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;T &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;when &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; is observed, they are used in (12.19) to compute
wt. In this way we achieve exactly the same final result as the MC/LMS
algorithm with poor computational properties (12.18), but with an incremental
algorithm whose time and memory complexity per step is &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;O&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;d&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;).
This is surprising and intriguing because the notion of an eligibility trace
(and the dutch trace in particular) has arisen in a setting without temporal-difference
(TD) learning (in contrast to Van Seijen &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;amp; &lt;/span&gt;&lt;span lang=EN-US&gt;Sutton
2014). It seems eligibility traces are not specific to TD learning at all; they
are more fundamental than that. The need for eligibility traces seems to arise
whenever one tries to learn long-term predictions in an efficient manner.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l99 level1 lfo54;tab-stops:44.65pt 44.65pt;background:transparent&#39;&gt;&lt;a
name=bookmark203&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;12.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Sarsa(A)&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:7.15pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Very few changes in the ideas already presented in
this chapter are required in order to extend eligibility-traces to action-value
methods. To learn approximate action values, &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;s, a, &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;w), rather than
approximate state values, &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;s,&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;w), we need to use the action-value form of the &lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;-step return, from Chapter 10:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.75pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;tab-stops:right 398.55pt;background:transparent&#39;&gt;&lt;span
class=295pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;t:t+n = &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;t+l + ... + &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;^ &lt;sup&gt;l&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;t+n + &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;T&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;&#39;K&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;t+n&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;, &lt;sup&gt;A&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;t+n&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t+n-l)&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(10&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;.&lt;sup&gt;4)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;for all &lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;such that &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;n &amp;gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;1
and 0 &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&amp;lt;
t &amp;lt; T -n&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;. Using this, we can
form the action- value form of the truncated &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;-return, which is otherwise identical to the state-value form
(12.9). The action-value form of the off-line &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;-return algorithm (12.4) simply uses &lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;rather than &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection303&gt;

&lt;p class=MsoNormal style=&#39;line-height:11.05pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection304&gt;

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class=2f&gt;&lt;span lang=EN-US&gt;,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;21&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection305&gt;

&lt;p class=MsoNormal style=&#39;line-height:11.6pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
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&lt;div class=WordSection306&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;where G^ == &lt;/span&gt;&lt;/span&gt;&lt;span
class=-1pt2&gt;&lt;span lang=EN-US&gt;G^&lt;/span&gt;\A3\BA&lt;span lang=EN-US&gt;^.&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; The compound backup diagram for this forward view
is shown in Figure 12.9. Notice the similarity to the diagram of the TD(A)
algorithm (Fig&amp;shy;ure 12.1). The first backup looks ahead one full step, to the
next state-action pair, the second looks ahead two steps, to the second
state-action pair, and so on. A final backup is based on the complete return.
The weighting of each n-step backup in the A-return is just as in TD(A) and the
A-return algorithm (12.3).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;The temporal-difference method for
action values, known as &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span lang=EN-US&gt;Sarsa(&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;A), approxi&amp;shy;mates this forward view. It has the
same update rule as given earlier for TD(A):&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;line-height:12.0pt;mso-line-height-rule:exactly;
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&lt;/div&gt;

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&lt;div class=WordSection307&gt;

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&lt;/div&gt;

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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection311&gt;

&lt;p class=MsoNormal style=&#39;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;margin-top:.8pt;margin-right:0cm;margin-bottom:.8pt;
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&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
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  &lt;![if !mso]&gt;
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   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
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    &lt;p class=254 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
    0cm;margin-left:5.0pt;margin-bottom:.0001pt;text-align:left;line-height:
    10.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=250ptExact&gt;&lt;span lang=EN-US style=&#39;font-size:5.5pt;letter-spacing:
    0pt&#39;&gt;(i -&lt;/span&gt;&lt;/span&gt;&lt;span class=25MingLiU2&gt;&lt;span style=&#39;font-size:9.5pt;
    letter-spacing:0pt&#39;&gt;\C8\EB&lt;span lang=ZH-TW&gt;)&lt;/span&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span
    class=2510pt&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:10.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=81MingLiU0&gt;&lt;span style=&#39;font-size:16.0pt;mso-ansi-language:
ZH-TW&#39;&gt;\B6\A1&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span
lang=EN-US&gt;At-i&lt;/span&gt;&lt;/p&gt;

&lt;p class=881 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.15pt;
margin-left:254.0pt;line-height:6.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=88ArialUnicodeMS0&gt;&lt;span lang=EN-US style=&#39;font-size:
5.5pt;font-style:normal&#39;&gt;I I&lt;/span&gt;&lt;/span&gt;&lt;span class=88ArialUnicodeMS1&gt;&lt;span
lang=EN-US style=&#39;font-size:5.5pt;font-style:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=880&gt;&lt;span lang=EN-US&gt;St Rt&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=811 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
12.85pt;margin-left:254.0pt;text-align:left;line-height:10.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;A&lt;sup&gt;t &lt;/sup&gt;&lt;/span&gt;&lt;span
class=81Batang&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:10.0pt&#39;&gt;-&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=center style=&#39;margin-bottom:22.2pt;text-align:center;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;Figure 12.9: Sarsa(A)&lt;sup&gt;,&lt;/sup&gt;s backup diagram.
Compare with Figure 12.1.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;except, naturally, using the action-value form of
the TD error:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:31.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:23.75pt;mso-line-height-rule:exactly;
tab-stops:right 400.75pt;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;5t = Rt+i + &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;q(St+i,
At+i, wt) - q(St, At, wt),&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(12.22)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:23.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;and the action-value form of
the eligibility trace:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:31.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:right 400.75pt;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;e-i&lt;/span&gt;&lt;/sup&gt;&lt;sub&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/sub&gt;&lt;span
lang=EN-US&gt; &lt;sup&gt;=. 0,&lt;/sup&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sub&gt;(12.23)&lt;/sub&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.35pt;
margin-left:31.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:184.6pt right 400.75pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;et == &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;Aet-i + Vq(St, At, wt),&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;0 &amp;lt; t &amp;lt; T&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUfff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\81A\81A&lt;span lang=ZH-TW&gt;\A2\C7&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUfff0&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\A9&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;(or the alternate replacing
trace given by (12.17)). Complete pseudocode for Sarsa(A) with linear function
approximation, binary features, and either accumulating or re&amp;shy;place traces is
given in the box. This pseudocode highlights a few optimizations possible in
the special case of binary features.&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br
clear=all style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:
9.0pt;margin-left:16.0pt;text-align:left;line-height:13.7pt;mso-line-height-rule:
exactly;background:black&#39;&gt;&lt;span class=2f0&gt;&lt;span lang=EN-US&gt;SarsaQ) with binary
features and linear function approximation for estimating &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMSb&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f0&gt;&lt;span lang=EN-US&gt; ^ or &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMSb&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span class=2f0&gt;&lt;span
lang=EN-US&gt; ^&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:9.2pt;
margin-left:16.0pt;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Input: a
function F(s, a) returning the set of (indices of) active features for s, &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;a &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;Input: a policy n to be evaluated, if any&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:16.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;Initialize parameter vector &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;= (wi,..., w&lt;sub&gt;n&lt;/sub&gt;) arbitrarily (e.g., &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:16.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;Loop for each episode:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;Initialize S&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:117.0pt;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;Choose &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span lang=EN-US&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUfff&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;n(-|S) or e-greedy according to q(S, \A1\F6, &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e &lt;/span&gt;&lt;/span&gt;&lt;span class=8pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;Loop for each step of episode:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;Take action A, observe R, S&lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;f&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; 5&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; \A1\AA R&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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class=affff&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;
in F(S, A):&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;5 \A1\AA 5 - Wi ei \A1\AA ei + 1 or ei \A1\AA 1
If S&lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; is terminal then: &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;+ a5 &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;e &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Go
to next episode Choose A&lt;sup&gt;;&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUfff0&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;n(-|S&lt;sup&gt;;&lt;/sup&gt;)
or Loop for i in F(SA&lt;sup&gt;;&lt;/sup&gt;): &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;+ a5 &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e e &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;\A1\AA T&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^e&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:29.8pt;
margin-left:44.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
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background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;S&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;t S&lt;sup&gt;;&lt;/sup&gt;; At#&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:2.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;Example 12.1: Traces in Gridworld &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;The use of eligibility traces can substan&amp;shy;tially increase the efficiency
of control algorithms over one-step method and even over n-step methods. The
reason for this is illustrated by gridworld example below.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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mso-line-height-rule:exactly;tab-stops:right 126.5pt 156.7pt center 168.5pt right 232.1pt 257.5pt center 269.05pt right 387.85pt;
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&lt;/v:shape&gt;&lt;span class=391&gt;&lt;span lang=EN-US&gt;Action values increased Action
values increased Action values increased &lt;sup&gt;Path taken&lt;/sup&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;by&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;one-step&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Sarsa&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;by&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;10-step&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Sarsa&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;by Sarsa(!) with !=0.9&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div align=right&gt;

&lt;table class=MsoNormalTable border=0 cellspacing=0 cellpadding=0
 style=&#39;border-collapse:collapse;mso-table-layout-alt:fixed;mso-table-overlap:
 never;mso-padding-alt:0cm .5pt 0cm .5pt&#39;&gt;
 &lt;tr style=&#39;mso-yfti-irow:0;mso-yfti-firstrow:yes;height:8.15pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;td width=12 valign=top style=&#39;width:9.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:8.15pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:8.15pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:8.15pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:8.15pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:9.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:8.15pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:8.15pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  background:white;padding:0cm .5pt 0cm .5pt;height:8.15pt;mso-height-rule:
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:9.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:9.1pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
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  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
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  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
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  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:9.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  paragraph;mso-element-anchor-horizontal:column;mso-element-left:right;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff2&gt;&lt;span
  lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;*&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  mso-element-frame-width:89.75pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:right;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff2&gt;&lt;span
  lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:8.4pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  mso-element-frame-width:89.75pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:right;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff2&gt;&lt;span
  lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:9.1pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  background:white;padding:0cm .5pt 0cm .5pt;height:8.15pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  background:white;padding:0cm .5pt 0cm .5pt;height:8.15pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:8.15pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
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  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
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  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
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  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  exactly&#39;&gt;
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  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:89.75pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
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  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff2&gt;&lt;span
  lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;*&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  background:white;padding:0cm .5pt 0cm .5pt;height:8.15pt;mso-height-rule:
  exactly&#39;&gt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  exactly&#39;&gt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  exactly&#39;&gt;
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  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:89.75pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:right;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff2&gt;&lt;span
  lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;+&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:9.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:9.1pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  &lt;td width=12 valign=top style=&#39;width:9.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  exactly&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  exactly&#39;&gt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  exactly&#39;&gt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  text-indent:0cm;line-height:5.5pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:89.75pt;mso-element-wrap:
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  class=ArialUnicodeMSff2&gt;&lt;span lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:89.75pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:right;
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  lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;&amp;raquo;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  exactly&#39;&gt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  exactly&#39;&gt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:89.75pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
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  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff2&gt;&lt;span
  lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;+&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  &lt;td width=12 valign=top style=&#39;width:9.1pt;border-top:solid windowtext 1.0pt;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
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  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
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  class=65pt1&gt;&lt;span lang=EN-US style=&#39;font-size:6.5pt&#39;&gt;&amp;#8226;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:89.75pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
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  lang=EN-US style=&#39;font-size:5.5pt&#39;&gt;&#39;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  &lt;p class=afffff6 style=&#39;margin-left:2.0pt;text-indent:0cm;line-height:5.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:89.75pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
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  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff2&gt;&lt;span
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  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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  &lt;td width=12 valign=top style=&#39;width:9.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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  &lt;td width=12 valign=top style=&#39;width:9.1pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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  &lt;td width=12 valign=top style=&#39;width:9.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  exactly&#39;&gt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  exactly&#39;&gt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  exactly&#39;&gt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  exactly&#39;&gt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  exactly&#39;&gt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
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  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:9.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:9.1pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
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  &lt;td width=12 valign=top style=&#39;width:9.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:right;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:9.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
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  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:89.75pt;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:8.9pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=12 valign=top style=&#39;width:9.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
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  &lt;td width=12 valign=top style=&#39;width:9.1pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
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  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
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  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:5.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:6.15pt;margin-right:2.0pt;margin-bottom:
0cm;margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;The first panel shows the path
taken by an agent in a single episode. In this example the values were all
originally zero, and all rewards were zero except for a positive reward at the
goal location marked by the &lt;/span&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSff3&gt;&lt;span
lang=EN-US&gt;G&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;. The arrows in
the other panels show which actions would be strengthened upon reaching the
goal by various algorithms. A one-step method would update only the last
action, whereas an n-step method would equally update the last n actions, and
an eligibility trace method would update all the actions up to the beginning of
the episode to different degrees, fading with recency.&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.55pt;mso-line-height-rule:exactly;tab-stops:right 399.2pt;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;The fading strategy is often the best tradeoff,
strongly learning how to reach the goal from the right, yet not as strongly
learning the roundabout path to the goal from the left that was taken in this
episode.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.55pt;mso-line-height-rule:exactly;tab-stops:right 399.2pt;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Exercise 12.7 Modifiy the pseudocode for Sarsa(A) to
use dutch traces (12.16) alone without the other features of a true online
algorithm. Continue to assume linear function approximation and binary
features.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.25pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.55pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;Example &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;: Sarsa(A) on Mountain Car Figure 12.10 shows results
with Sarsa(A) on the Mountain Car task introduced in Example 10.1. The function
ap&amp;shy;proximation, action selection, and environmental details were exactly as in
Chap&amp;shy;ter &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; such that these results can be numerically compared
with those for an n-step Sarsa. Those results varied the backup length n
whereas here for Sarsa(A) we vary the trace parameter A, which plays a similar
role. The fading-trace bootstrapping strategy of Sarsa(A) appears to result in
more efficient learning on this problem.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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style=&#39;mso-bookmark:bookmark204&#39;&gt;&lt;span class=342&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:
bookmark204&#39;&gt;&lt;span class=34MingLiU0&gt;&lt;span style=&#39;font-size:9.5pt;mso-ansi-language:
ZH-TW;font-weight:normal&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark204&#39;&gt;&lt;span
class=342&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A3\A9&lt;/span&gt;&lt;span lang=EN-US&gt;with
replacing traces&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:304.8pt;mso-element-frame-height:
163.9pt;mso-element-frame-hspace:105.6pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:195.75pt;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=547 height=219&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=219 style=&#39;padding-top:0cm;padding-right:
  105.6pt;padding-bottom:0cm;padding-left:105.6pt&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:304.8pt;
  mso-element-frame-height:163.9pt;mso-element-frame-hspace:105.6pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:195.75pt;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_53&#34; o:spid=&#34;_x0000_i1068&#34;
   type=&#34;#_x0000_t75&#34; alt=&#34;image139&#34; style=&#39;width:305.25pt;height:164.25pt;
   visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image139.jpg&#34;
    o:title=&#34;image139&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:77.15pt;mso-element-frame-height:
50.9pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
mso-element-anchor-horizontal:column;mso-element-left:109.6pt;mso-element-top:
48.9pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=103 height=68&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=68 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=292 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
  1.2pt;margin-left:4.0pt;text-align:left;line-height:10.5pt;mso-line-height-rule:
  exactly;background:transparent;mso-element:frame;mso-element-frame-width:
  77.15pt;mso-element-frame-height:50.9pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:109.6pt;mso-element-top:48.9pt&#39;&gt;&lt;span lang=EN-US&gt;Mountain
  Car&lt;/span&gt;&lt;/p&gt;
  &lt;p class=6c style=&#39;margin-left:4.0pt;line-height:8.5pt;mso-line-height-rule:
  exactly;background:transparent;mso-element:frame;mso-element-frame-width:
  77.15pt;mso-element-frame-height:50.9pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:109.6pt;mso-element-top:48.9pt&#39;&gt;&lt;span class=68&gt;&lt;span
  lang=EN-US&gt;Steps per episode&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=314 style=&#39;margin-top:0cm;margin-right:4.0pt;margin-bottom:0cm;
  margin-left:15.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:
  inter-ideograph;line-height:9.0pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:77.15pt;mso-element-frame-height:
  50.9pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:109.6pt;mso-element-top:
  48.9pt&#39;&gt;&lt;span class=312&gt;&lt;span lang=EN-US&gt;averaged over first 50 episodes and
  100 runs&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:399.35pt;mso-element-frame-height:
23.8pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
mso-element-anchor-horizontal:column;mso-element-left:105.65pt;mso-element-top:
178.95pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=532 height=32&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=32 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=344 style=&#39;text-align:justify;text-justify:inter-ideograph;
  line-height:11.9pt;mso-line-height-rule:exactly;tab-stops:right 399.35pt;
  background:transparent;mso-element:frame;mso-element-frame-width:399.35pt;
  mso-element-frame-height:23.8pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:105.65pt;
  mso-element-top:178.95pt&#39;&gt;&lt;span lang=EN-US&gt;Figure 12.10: Early performance on
  the Mountain Car task of Sarsa(A) with replacing traces and n-step Sarsa
  (copied from Figure 10.4) as a function of the step size, a.&lt;span
  style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F6&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:6.55pt;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;There is also an action-value
version of our ideal TD method, the &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;online&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; A-return algorithm presented in Section 12.4. Everything in that
section goes through without change other than to use the action-value form of
the n-step return given at the beginning of this section. In the case of linear
function approximation, the ideal algorithm again has an exact, efficient O(d)
implementation, called &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;True Online Sarsa(A).&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; The analyses in Sections 12.5 and 12.6 carry through
without change other than to use state-action feature vectors x&lt;sub&gt;t&lt;/sub&gt; =
x(S&lt;sub&gt;t&lt;/sub&gt;, A&lt;sub&gt;t&lt;/sub&gt;) instead of state feature vectors x&lt;sub&gt;t&lt;/sub&gt;
= x(S&lt;sub&gt;t&lt;/sub&gt;). The pseudocode for this algorithm given in the a box on the
next page. Figure &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;12.11&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;
compares the performance of various versions of Sarsa(A) on the Mountain Car
example.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection313&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
8.7pt;margin-left:16.0pt;text-align:left;line-height:12.0pt;mso-line-height-rule:
exactly;background:black&#39;&gt;&lt;span class=2f0&gt;&lt;span lang=EN-US&gt;True Online Sarsa(A)
for estimating w&lt;sup&gt;T&lt;/sup&gt;x ^ &lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiUa&gt;&lt;span
style=&#39;font-size:9.5pt;mso-ansi-language:ZH-TW&#39;&gt;\BF\DB&lt;/span&gt;&lt;/span&gt;&lt;span class=2f0&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;or q^&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:77.0pt;margin-bottom:
6.0pt;margin-left:16.0pt;text-align:left;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Input: a
feature function x : S+ x &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; R&lt;sup&gt;d&lt;/sup&gt; s.t. x(terminal, \A1\F6) = 0 Input: the policy n to be evaluated,
if any&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:16.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;Initialize parameter w arbitrarily (e.g., w = 0)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:16.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;Loop for each episode:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Initialize S&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:77.0pt;margin-bottom:
0cm;margin-left:30.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;Choose A &lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU8&gt;&lt;span style=&#39;font-size:
8.5pt;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;n(-|S)
or near greedily from S using w; x \A1\AA x(S, A) e \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 265.9pt 296.9pt left 300.7pt;
background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Qoid \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(a&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;scalar&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;temporary
variable)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Loop for each step of episode:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:41.05pt;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;|&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;Take
action A, observe R, &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU8&gt;&lt;span
style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;ح&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:41.05pt;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;|&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;Choose
A&#39;&lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU8&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:
ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt5&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;(-|S&lt;sup&gt;;&lt;/sup&gt;) or near
greedily from &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt5&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;f&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; using w; x&lt;sup&gt;;&lt;/sup&gt; \A1\AA x(S&lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiUb&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;A&lt;sup&gt;;&lt;/sup&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:41.05pt;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;|&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt5&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;\A1\AA w&lt;sup&gt;T&lt;/sup&gt;x&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:41.05pt;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;|&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;Q&#39;
\A1\AA w&lt;sup&gt;T&lt;/sup&gt;x&#39;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.95pt;mso-line-height-rule:exactly;tab-stops:41.05pt;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;|&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; \A1\AA R + yQ&#39; - Q&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.95pt;mso-line-height-rule:exactly;tab-stops:41.05pt;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;|&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;e
\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Ae + &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; - aYA
e&lt;sup&gt;T&lt;/sup&gt;x) x&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:41.05pt;background:
transparent&#39;&gt;&lt;span class=28pt&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;w
\A1\AA w&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;a(8&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; + &lt;sup&gt;Q - Q&lt;/sup&gt;o&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;d&lt;sup&gt;)e
- a(Q - Q&lt;/sup&gt;o&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;d&lt;sup&gt;)x&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;mso-list:l28 level1 lfo55;
tab-stops:41.05pt 43.7pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;I&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;Q&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;o&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;d &lt;sup&gt;\A1\AA Q&lt;/sup&gt;&#39;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.4pt;
margin-left:30.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;tab-stops:41.05pt;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;|&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;x \A1\AA xZ&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.9pt;
margin-left:30.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;tab-stops:41.05pt;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;|&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;AL \A1\AA#&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:36.6pt;
margin-left:30.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;until S&#39; is terminal&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:202.55pt;mso-element-frame-height:
169.9pt;mso-element-frame-hspace:88.1pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:176.0pt;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=387 height=227&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=227 style=&#39;padding-top:0cm;padding-right:
  88.1pt;padding-bottom:0cm;padding-left:88.1pt&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:202.55pt;
  mso-element-frame-height:169.9pt;mso-element-frame-hspace:88.1pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:176.0pt;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_54&#34; o:spid=&#34;_x0000_i1067&#34;
   type=&#34;#_x0000_t75&#34; alt=&#34;image140&#34; style=&#39;width:203.25pt;height:170.25pt;
   visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image140.jpg&#34;
    o:title=&#34;image140&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:78.7pt;mso-element-frame-height:
47.05pt;mso-element-frame-hspace:88.1pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:92.25pt;mso-element-top:55.25pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=222 height=63&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=63 style=&#39;padding-top:0cm;padding-right:
  88.1pt;padding-bottom:0cm;padding-left:88.1pt&#39;&gt;
  &lt;p class=292 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
  .7pt;margin-left:16.0pt;text-align:left;text-indent:-13.0pt;line-height:10.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:78.7pt;mso-element-frame-height:47.05pt;mso-element-frame-hspace:
  88.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:92.25pt;mso-element-top:
  55.25pt&#39;&gt;&lt;span lang=EN-US&gt;Mountain Car&lt;/span&gt;&lt;/p&gt;
  &lt;p class=2fb style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:0cm;
  margin-left:16.0pt;margin-bottom:.0001pt;text-indent:-13.0pt;line-height:
  8.4pt;mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:78.7pt;mso-element-frame-height:47.05pt;mso-element-frame-hspace:
  88.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:92.25pt;mso-element-top:
  55.25pt&#39;&gt;&lt;span class=285pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;Reward
  per episode &lt;/span&gt;&lt;/span&gt;&lt;span class=2f3&gt;&lt;span lang=EN-US&gt;averaged over
  first 20 episodes and 100 runs&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:102.5pt;mso-element-frame-height:
7.7pt;mso-element-frame-hspace:88.1pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:380.7pt;mso-element-top:25.25pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=254 height=10&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=10 style=&#39;padding-top:0cm;padding-right:
  88.1pt;padding-bottom:0cm;padding-left:88.1pt&#39;&gt;
  &lt;p class=194 align=left style=&#39;text-align:left;line-height:7.5pt;mso-line-height-rule:
  exactly;background:transparent;mso-element:frame;mso-element-frame-width:
  102.5pt;mso-element-frame-height:7.7pt;mso-element-frame-hspace:88.1pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:380.7pt;mso-element-top:
  25.25pt&#39;&gt;&lt;span class=192&gt;&lt;span lang=EN-US&gt;Sarsa&lt;/span&gt;&lt;/span&gt;&lt;span class=192&gt;&lt;span
  lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
  class=19MingLiU0&gt;&lt;span style=&#39;font-size:6.0pt;mso-ansi-language:ZH-TW&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span
  class=192&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A3\A9&lt;/span&gt;&lt;span lang=EN-US&gt;with
  replacing traces&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:399.1pt;mso-element-frame-height:
47.5pt;mso-element-frame-hspace:88.1pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:88.15pt;mso-element-top:184.6pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=649 height=63&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=63 style=&#39;padding-top:0cm;padding-right:
  88.1pt;padding-bottom:0cm;padding-left:88.1pt&#39;&gt;
  &lt;p class=344 style=&#39;text-align:justify;text-justify:inter-ideograph;
  line-height:11.75pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:399.1pt;mso-element-frame-height:
  47.5pt;mso-element-frame-hspace:88.1pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:88.15pt;mso-element-top:184.6pt&#39;&gt;&lt;span lang=EN-US&gt;Figure
  12.11: Summary comparison of Sarsa(A) algorithms on the Mountain Car task.
  True Online Sarsa(A) performed better than regular Sarsa(A) with both
  accumulating and replacing traces. Also included is a version of Sarsa(A)
  with replacing traces in which, on each time step, the traces for the state
  and the actions not selected were set to zero.&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.85pt;
margin-left:0cm;text-indent:0cm;line-height:15.5pt;mso-line-height-rule:exactly;
mso-list:l99 level1 lfo54;tab-stops:43.9pt;background:transparent&#39;&gt;&lt;a
name=bookmark205&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;12.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Variable A and &lt;/span&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark205&#39;&gt;&lt;span class=13Georgia&gt;&lt;span lang=EN-US
style=&#39;font-size:15.5pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:3.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;We are starting now to reach the end of our
development of fundamental TD learning algorithms. To present the final
algorithms in their most general forms, it is useful to generalize the degree
of bootstrapping and discounting beyond constant parameters to functions
potentially dependent on the state and action. That is, each time step will
have a different &lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU8&gt;&lt;span style=&#39;font-size:
8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;, denoted Xt and 7t. We change notation now so that &lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU8&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;:S x &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; [0,1] is now a whole function from states and actions to the unit
interval such that Xt == XfSt, At), and similarly, &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; : S [&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;] is a function from
states to the unit interval such that &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;t == &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;(St).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:13.15pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The latter generalization, to &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;state-dependent
discounting&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;, is particularly
significant because it changes the return, the fundamental random variable
whose expectation we seek to estimate. Now the return is defined more generally
as&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:.35pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t = &lt;sup&gt;R&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; t&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:43.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;=&lt;sup&gt;R&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; t&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+2 &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; t&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; t&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+3 &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; t&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;+2 &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; t&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+3&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+4 &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;+&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=9a style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.25pt;
margin-left:57.0pt;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:
right 123.7pt;background:transparent&#39;&gt;&lt;!--[if supportFields]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-element:field-begin&#39;&gt;&lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;TOC \o &amp;quot;1-5&amp;quot; \h \z &lt;span
style=&#39;mso-element:field-separator&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;span lang=EN-US&gt;^&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;k&lt;/span&gt;&lt;/p&gt;

&lt;p class=9a style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:43.0pt;margin-bottom:.0001pt;line-height:11.05pt;mso-line-height-rule:
exactly;tab-stops:center 128.45pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;=^ &lt;sup&gt;R&lt;/sup&gt;k&lt;/span&gt;&lt;span
class=995pt&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;7i,&lt;/span&gt;&lt;/p&gt;

&lt;p class=9a style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.1pt;
margin-left:57.0pt;line-height:11.05pt;mso-line-height-rule:exactly;tab-stops:
right 123.7pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;k&lt;/span&gt;&lt;span
class=995pt&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;i&lt;/span&gt;&lt;span
class=995pt&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;span class=995pt&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-end&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:3.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;where, to assure the sums are finite, we require that
H^k&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;k = &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; with probability one for all t. One convenient
aspect of this definition is that it allows us to dispense with episodes, start
and terminal states, and T as a special cases and quantities. A terminal state
just becomes a state at which &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;(s) = 0
and which transitions to the start state. In that way (and by choosing &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;(-) as a constant function) we can recover the
classical episodic setting as a special case. State dependent discounting
includes other prediction cases such as &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;soft
termination&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;, when we seek to
predict a quantity that becomes complete but does not alter the flow of the
Markov process. Discounted returns themselves can be thought of as such a
quantity, and state de&amp;shy;pendent discounting is a deep unification of the
episodic and discounted-continuing cases. (The undiscounted-continuing case
still needs some special treatment.)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:13.15pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The generalization to variable
bootstrapping is not a change in the problem, like discounting, but a change in
the solution strategy. The generalization affects the X-returns for states and
actions. The new state-based X-return can be written recur&amp;shy;sively as&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.75pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;tab-stops:right 400.7pt;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G;s&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; = &lt;sup&gt;R&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;+ &lt;sup&gt;7&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;(&lt;sup&gt;(1&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt; - X&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;)(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;amp;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(S&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;,w&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;sup&gt;)&lt;/sup&gt; + &lt;sup&gt;X&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;G&lt;/span&gt;\A3\BB&lt;/sup&gt;&lt;span lang=EN-US&gt;+&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;) ,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(12&lt;/sup&gt;.&lt;sup&gt;24)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;where now we have added
the \A1\B0s\A1\B1 to the superscript X to remind us that this is a return that bootstraps
from state values, distinguishing it from returns that boot&amp;shy;strap from action
values, which we present below with \A1\B0a\A1\B1 in the superscript. This equation says
that the X-return is the first reward, undiscounted and unaffected by
bootstrapping, plus possibly a second term to the extent that we are not
discount&amp;shy;ing at the next state (that is, according to &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU6&gt;&lt;span
style=&#39;font-size:9.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BB&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; recall that this is zero if the next state is terminal). To the
extent that we aren\A1\AFt terminating at the next state, we&lt;br clear=all
style=&#39;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;have a
second term which is itself divided into two cases depending on the degree of
bootstrapping in the state. To the extent we are bootstrapping, this term is
the estimated value at the state, whereas, to the extent that we not
bootstrapping, the&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;text-align:right;text-indent:0cm;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;next time step. The action-based X-return is
either the&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:267.0pt;text-indent:0cm;line-height:13.7pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;term is the X-return for the Sarsa form&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:51.0pt;text-indent:0cm;line-height:22.55pt;
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  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=0ptExact6&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(12.25)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G;a&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; = &lt;sup&gt;R&lt;/sup&gt;t+i + 7t+i (&lt;sup&gt;(1 &lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;- &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;X&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+i)3&lt;sup&gt;(&lt;/sup&gt;St+i,
&lt;sup&gt;A&lt;/sup&gt;t+i, &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t&lt;sup&gt;)&lt;/sup&gt; + &lt;sup&gt;X&lt;/sup&gt;t+i&lt;sup&gt;G;&lt;/sup&gt;+i or the Expected Sarsa
form,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection314&gt;

&lt;p class=MsoNormal&gt;&lt;!--[if mso &amp; !supportInlineShapes &amp; supportFields]&gt;&lt;span
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  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G;a&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; = &lt;sup&gt;R&lt;/sup&gt;t+i + 7t+i (&lt;sup&gt;(1&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;where&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection316&gt;

&lt;p class=MsoNormal style=&#39;line-height:11.1pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection317&gt;

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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=0ptExact6&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(12.27)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Qt == ^n(a|St)q(St,a, wt_i).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.55pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;tab-stops:right 400.6pt;
background:transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;Exercise 12.8 &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Generalize
the three recursive equations above to their truncated versions, defining G&lt;/span&gt;\A3\BB&lt;span
lang=EN-US&gt;h and G;h.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l99 level1 lfo54;tab-stops:45.65pt;background:transparent&#39;&gt;&lt;a
name=bookmark206&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;12.9&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Off-policy Eligibility Traces&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.55pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;The final step is to incorporate importance
sampling. Unlike in the case of n-step methods, for full non-truncated
X-returns one does not have a practical option in which the importance sampling
is done outside the target return. Instead, we move directly to the
bootstrapping generalization of per-reward importance sampling (Sec&amp;shy;tion 7.4).
In the state case, our final definition of the X-return generalizes (12.24),
after the model of (7.10), to&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.7pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;G;s&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; = &lt;sup&gt;p&lt;/sup&gt;t(&lt;sup&gt;R&lt;/sup&gt;t+i
+ &lt;sup&gt;7&lt;/sup&gt;t+i(&lt;sup&gt;(1 -X&lt;/sup&gt;t+i&lt;sup&gt;)v(S&lt;/sup&gt;t+i&lt;sup&gt;,w&lt;/sup&gt;t&lt;sup&gt;)&lt;/sup&gt;
+ &lt;sup&gt;X&lt;/sup&gt;t+i&lt;sup&gt;G&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUfff0&gt;&lt;sup&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BB&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;+1)) +&lt;sup&gt;(1 -p&lt;/sup&gt;t&lt;sup&gt;)v(S&lt;/sup&gt;t&lt;sup&gt;,w&lt;/sup&gt;t&lt;sup&gt;)
(12&lt;/sup&gt;.&lt;sup&gt;28)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;where pt =&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUfff1&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;ū\C6\EF&lt;/span&gt;&lt;/span&gt;&lt;span class=affff3&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;is the usual single-step importance sampling ratio. Much like the
other returns we have seen in this book, the truncated version of this return
can be approximated simply in terms of sums of the state-based TD error,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.8pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 400.6pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;5f = Rt+i +
7t+iV(St+i,wt) - v(St,wt),&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(12.29)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;as&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:127.0pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;^ k&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.25pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 400.6pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;G&lt;/span&gt;&lt;sup&gt;\A3\BB&lt;span
lang=EN-US&gt;s&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; ~ v(St,wt) + &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;ptY^&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; 5&lt;sup&gt;s&lt;/sup&gt; n 7iXiPi&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(12.30)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:.85pt;
margin-left:127.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;k=t i=t+i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;with the approximation becoming exact if the
approximate value function does not change.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;tab-stops:253.6pt center 273.5pt 285.15pt 319.5pt right 400.6pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Exercise 12.9 Prove
that (12.30) becomes exact&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;if&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;the&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;value&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;function&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;does
not&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;tab-stops:center 239.3pt right 251.1pt left 253.6pt center 273.5pt 297.15pt 309.15pt 342.05pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;change. To save
writing, consider the case of&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;t&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;=&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;0,&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;and&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;use&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;the&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;notation
Vk ==&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;v(Sk ,w).&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:19.0pt;margin-bottom:0cm;
margin-left:4.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:14.9pt;
mso-line-height-rule:exactly;tab-stops:right 402.9pt;background:transparent&#39;&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;Exercise 12.10 &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;The truncated version of general off-policy is
denoted GAh. Guess the correct equation, based on (12.30).&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:4.0pt;text-indent:0cm;line-height:14.9pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;The above form of the A-return is convenient to use in a
forward-view update,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection318&gt;

&lt;p class=MsoNormal style=&#39;line-height:8.55pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:7.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection319&gt;

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&lt;/v:shape&gt;&lt;a name=bookmark207&gt;&lt;span lang=EN-US&gt;-V(St,wt)) Vv(St,wt)&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection320&gt;

&lt;p class=MsoNormal style=&#39;margin-top:4.3pt;margin-right:0cm;margin-bottom:4.3pt;
margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection321&gt;

&lt;p class=afffff6 style=&#39;margin-left:51.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;a name=bookmark208&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;~
wt + apt &lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;span style=&#39;mso-bookmark:bookmark208&#39;&gt;&lt;span
class=MingLiUfff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ح&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;E&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.25pt;
margin-left:117.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 173.15pt left 201.7pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;v k=t&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;i=t+l&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:8.15pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;which to the
experienced eye looks like an eligibility-based TD update&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUfff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;the product is like an eligibility trace and it is
multiplied by TD errors. But this is just one time step of a forward view. The
relationship that we are looking for is that the forward-view update, summed
over time, is approximately equal to a backward-view update, summed over time
(this relationship is only approximate because again we ignore changes in the
value function). The sum of the forward-view update over time is&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:22.0pt;mso-line-height-rule:exactly;
tab-stops:right 227.9pt;background:transparent&#39;&gt;&lt;span class=ArialUnicodeMSff4&gt;&lt;span
lang=EN-US style=&#39;font-size:10.0pt&#39;&gt;yi&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf6&gt;&lt;span lang=EN-US style=&#39;font-size:22.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(w&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+i&lt;sup&gt;- w&lt;/sup&gt;t&lt;sup&gt;)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;a&lt;/sup&gt;pt&lt;sup&gt;8s
Vv(S&lt;/sup&gt;t&lt;sup&gt;,w&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf6&gt;&lt;span
lang=EN-US style=&#39;font-size:22.0pt&#39;&gt;^ n &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;7i &lt;sup&gt;A&lt;/sup&gt;iPi&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:28.0pt;margin-bottom:.0001pt;line-height:12.5pt;mso-line-height-rule:
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lang=EN-US&gt;&lt;span style=&#39;mso-element:field-begin&#39;&gt;&lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;TOC \o &amp;quot;1-5&amp;quot; \h \z &lt;span
style=&#39;mso-element:field-separator&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;span lang=EN-US&gt;&lt;span
class=affff4&gt;t=l&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;t=l
k=t&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;i=t+l&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=10a style=&#39;margin-left:117.0pt;tab-stops:right 252.45pt;background:
transparent&#39;&gt;&lt;span class=1012pt&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;
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1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;k&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:117.0pt;margin-bottom:.0001pt;line-height:22.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=ArialUnicodeMSff5&gt;&lt;span lang=EN-US
style=&#39;font-size:10.0pt&#39;&gt;=n&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf7&gt;&lt;span
lang=EN-US style=&#39;font-size:22.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=affff4&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;a&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;Pt&lt;sup&gt;V&lt;/sup&gt;^&lt;sup&gt;(S&lt;/sup&gt;t &lt;sup&gt;,w&lt;/sup&gt;t&lt;sup&gt;)8s&lt;/sup&gt;
&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf7&gt;&lt;span lang=EN-US
style=&#39;font-size:22.0pt&#39;&gt;n &lt;/span&gt;&lt;/span&gt;&lt;span class=affff4&gt;&lt;span lang=EN-US&gt;7i
&lt;sup&gt;A&lt;/sup&gt;iPi&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:117.0pt;margin-bottom:.0001pt;line-height:9.5pt;mso-line-height-rule:
exactly;tab-stops:right 252.45pt;background:transparent&#39;&gt;&lt;span class=affff4&gt;&lt;span
lang=EN-US&gt;k=lt=l&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;i=t+l&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:117.0pt;margin-bottom:.0001pt;text-align:left;text-indent:22.0pt;
line-height:13.2pt;mso-line-height-rule:exactly;tab-stops:center 157.7pt right 282.45pt;
background:transparent&#39;&gt;&lt;span class=affff4&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(usin&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;g the summation&lt;sup&gt;rule:&lt;/sup&gt; eLx ELt = ELx E*&lt;sup&gt;k&lt;/sup&gt;=x) &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt5&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;^&lt;span style=&#39;mso-tab-count:
1&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=affff4&gt;&lt;span lang=EN-US&gt;k&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;k&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:117.0pt;margin-bottom:.0001pt;text-align:left;text-indent:22.0pt;
line-height:normal;tab-stops:center 157.7pt right 282.45pt;background:transparent&#39;&gt;&lt;span
class=affff4&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;a8S&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf7&gt;&lt;span lang=EN-US style=&#39;font-size:22.0pt&#39;&gt;X!&lt;/span&gt;&lt;/span&gt;&lt;span
class=affff4&gt;&lt;span lang=EN-US&gt;pt&lt;sup&gt;V&lt;/sup&gt;^&lt;sup&gt;(S&lt;/sup&gt;t&lt;sup&gt;,w&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf7&gt;&lt;span lang=EN-US style=&#39;font-size:22.0pt&#39;&gt;^ n &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff4&gt;&lt;span lang=EN-US&gt;7i&lt;sup&gt;A&lt;/sup&gt;iPi, k=l&lt;span style=&#39;mso-tab-count:
1&#39;&gt; &lt;/span&gt;t=l&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;i=t+l&lt;/span&gt;&lt;/span&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-end&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:18.15pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;which would be in
the form of the sum of a backward-view TD update if the entire expression from
the second sum left could be written and updated incrementally as an
eligibility trace, which we now show can be done. That is, we show that if this
expression was the trace at time k, then we could update it from its value at
time &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span lang=EN-US&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; - 1 by:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;e&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;k&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:51.0pt;text-align:justify;text-justify:
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tab-stops:right 183.7pt;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;^^&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;P&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;tW(&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;,w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;Y&lt;/span&gt;&lt;/span&gt;&lt;span
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&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;TOC \o &amp;quot;1-5&amp;quot; \h \z &lt;span
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class=3395pt&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;k &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;P&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark209&#39;&gt;&lt;span
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&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.75pt;
margin-left:172.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;=t+i&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=208 style=&#39;margin-left:117.0pt;text-indent:22.0pt;line-height:8.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=205&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;e&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;k-1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:.35pt;
margin-left:51.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
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lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;Pk (&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;k Ak
ek-i &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+
&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Vv&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Sk ,wk&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;),&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;which, changing the index from &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;k &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;to &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;, is the general accumulating trace update for state values:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
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&lt;/v:shape&gt;&lt;a name=bookmark210&gt;&lt;span lang=EN-US&gt;et == pt(7tAtet-&lt;/span&gt;&lt;/a&gt;&lt;span
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&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection322&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;This eligibility trace, together with the usual
semi-gradient parameter-update rule for TD(A) (12.7), forms a general TD(A)
algorithm that can be applied to either on-policy or off-policy data. In the
on-policy case, the algorithm is exactly TD(A) because pt is alway 1 and
(12.31) becomes the usual accumulating trace (12.5) (extended to variable A and
&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;). In the off-policy case, the algorithm often
works well but, as an semi-gradient method, is not guaranteed to be stable. In
the next few sections we will consider extensions of it that do guarantee
stability.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.15pt;
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0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;A very similar series of steps can be followed to
derive the off-policy eligibility traces for &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span
lang=EN-US&gt;action&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; -value
methods and corresponding general Sarsa(A) algorithms. One can start with
either recursive form for the general action-based A-return, (12.25) or
(12.26). Let&#39;s use the latter here, as it is more different than the
state-based case that we have already done. We extend (12.26) to the off-policy
case after the model of (7.11) to produce&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.0pt;
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&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+i
+ &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;t+i &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;(&lt;sup&gt;(1&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt; - A&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+i)&lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;t+i + &lt;sup&gt;A&lt;/sup&gt;t+i (&lt;sup&gt;p&lt;/sup&gt;t+i&lt;sup&gt;G&lt;/sup&gt;\A1\E3+i
+ &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;(1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;sup&gt;&lt;span lang=EN-US&gt; -&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; Pt+i)&lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;t+i)) &lt;sup&gt;(12&lt;/sup&gt;.&lt;sup&gt;32)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.55pt;
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class=afffc&gt;&lt;span lang=EN-US&gt;where &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span
lang=EN-US&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t+i is as given by
(12.27). Again the A-return can be written approximately as the sum of TD
errors,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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    0cm;margin-left:5.0pt;margin-bottom:.0001pt;text-align:left;line-height:
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    class=20ptExact4&gt;&lt;span lang=EN-US style=&#39;font-size:11.0pt;letter-spacing:
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;~ q(St, At, wt) + &lt;/span&gt;&lt;/span&gt;&lt;span
class=2CenturySchoolbook6&gt;&lt;span lang=EN-US style=&#39;font-size:13.0pt&#39;&gt;L &lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU6&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;\9A{&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=2CenturySchoolbook6&gt;&lt;span
lang=EN-US style=&#39;font-size:13.0pt&#39;&gt;II &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;7iAiPi,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(12.33)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.7pt;
margin-left:84.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;tab-stops:right 137.5pt;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;t&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.1pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;This time using the expectation-based form of the
TD error,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.55pt;
margin-left:41.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:right 398.95pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;= &lt;sup&gt;R&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;1+1^51+1 &lt;sup&gt;- q(S&lt;/sup&gt;t&lt;sub&gt;;&lt;/sub&gt; &lt;sup&gt;A&lt;/sup&gt;t, &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t&lt;sup&gt;)&lt;/sup&gt;.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(12&lt;/sup&gt;.&lt;sup&gt;34)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;As before, the approximation becomes exact if the
approximate value function does not change.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.2pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;tab-stops:right 398.95pt;
background:transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;Exercise 12.11 &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;The
truncated version of general off-polincy is denoted G;^. Guess the correct
equation, based on (12.33).&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;Using steps entirely analogous to those for the
state case, one can write a forward- view update based on (12.33), transform
the sum of the updates using the summation rule, and finally derive the following
form for the eligibility trace for action values:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.75pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:right 398.95pt;
background:transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t = &lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;tAtPt&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t-i + Vq(St, At, &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t),&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(12.35)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:2.8pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;This eligibility trace, together with the usual
semi-gradient parameter-update rule (12.7), forms a general Expected Sarsa(A)
algorithm that can be applied to either on- policy or off-policy data though,
in the off-policy case it is not stable unless combined with one of the methods
presented in the following sections.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;tab-stops:right 398.95pt;
background:transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;Exercise 12.12 &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Show in
detail the steps outlined above for deriving (12.35) from (12.33).&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:10.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;Exercise 12.13 &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;Show how similar steps can be followed starting
from the Sarsa form of the action-based A-return (12.25) to derive the same
eligibility trace algorithm as (12.35), but with the Sarsa TD error:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;
tab-stops:right 398.95pt;background:transparent&#39;&gt;&lt;span class=MingLiUfff0&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;\85\BC&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;=Rt&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;q(St+i, At+i, &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t) -
q(St, At, &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t),&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(12.36)&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 398.9pt;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;to establish a general Sarsa(X) algorithm, applicable to both
on-policy and off-policy data, that is the same as the Sarsa(X) algorithm that
presented in Section 12.7 in the on-policy case with constant X and &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;At X = 1, these
algorithms become closely related to corresponding Monte Carlo algorithms. One
might expect that an exact equivalence would hold for episodic problems and
off-line updating, but in fact the relationship is subtler and slightly weaker
than that. Under these most favorable conditions still there is not an episode
by episode equivalence of updates, only of their expectations. This should not
be surprising as these method make irrevocable updates as a trajectory unfolds,
whereas true Monte Carlo methods would make no update for a trajectory if any
action within it has zero probability under the target policy. In particular,
all of these methods, even at X = 1, still bootstrap in the sense that their
targets depend on the current value estimates\A1\AAits just that the dependence cancels
out in expected value. Whether this is a good or bad property in practice is
another question. Recently methods have been proposed that do achieve an exact
equivalence (Sutton, Mahmood, Precup and van Hasselt, 2014). These methods
require an additional table of \A1\B0provisional values\A1\B1 that keep track of updates
which have been made but may need to be retracted (or emphasized) depending on
the actions taken later. The state and state-action versions of these methods
are called PTD(X) and PQ(X) respectively, where the \A1\AEP\A1\AF stands for Provisional.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The practical
consequences of all these new off-policy methods have not yet been established.
Undoubtedly, issues of high variance will arise as they do in all off-policy
methods using importance sampling (Section 11.9).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;If X &amp;lt; 1,
then all these off-policy algorithms involve bootstrapping and the deadly triad
applies (Section 11.3), meaning that they can be guaranteed stable only for the
tabular case, for state aggregation, and for other limited forms of function
approxi&amp;shy;mation. For linear and more-general forms of function approximation the
parameter vector may diverge to infinity as in the examples in Chapter &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;. As we discussed there, the challenge of off-policy
learning has two parts. Off-policy eligibility traces deal effectively with the
first part of the challenge, correcting for the expected value of the targets,
but not at all with the second part of the challenge, having to do with the
distribution of updates. Three algorithmic strategies for meeting the second part
of the challenge of off-policy learning with eligibility traces are presented
in the next three sections.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 398.9pt;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;Exercise 12.14 What are the dutch-trace and replacing-trace versions
of off-policy eligibility traces for state-value and action-value methods?&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:21.05pt;
margin-left:0cm;text-indent:0cm;line-height:15.5pt;mso-line-height-rule:exactly;
mso-list:l99 level1 lfo54;tab-stops:57.35pt;background:transparent&#39;&gt;&lt;a
name=bookmark211&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;12.10&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=13-1pt0&gt;&lt;span lang=EN-US&gt;Watkins&lt;/span&gt;\A3\AC&lt;span
lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; Q(A) to Tree-Backup(A)&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

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   &lt;tr&gt;
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    margin-left:7.0pt;text-align:justify;text-justify:inter-ideograph;
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    class=20ptExact4&gt;&lt;span lang=EN-US style=&#39;font-size:11.0pt;letter-spacing:
    0pt&#39;&gt;g to eligibility es in the usual after the first n Figure 12.12. licy
    version of it to arbitrary our treatment In Chapter 7, Tree Backup, ng. It
    remains well call &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMSc&gt;&lt;span
    lang=EN-US style=&#39;font-size:7.5pt;letter-spacing:0pt&#39;&gt;Tree- &lt;/span&gt;&lt;/span&gt;&lt;span
    class=20ptExact4&gt;&lt;span lang=EN-US style=&#39;font-size:11.0pt;letter-spacing:
    0pt&#39;&gt;to Q-learning ough it can be&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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    style=&#39;font-size:11.0pt;letter-spacing:0pt&#39;&gt;iagram in Fig- ed in the usual
    led equations, parameters, it action values,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Several methods have been proposed
over the years to extend Q-learnii traces. The original is &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;Watkins&#39;s Q(A),&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; which decays its eligibility trac way as long as a
greedy action was taken, then cuts the traces to zero non-greedy action. The
backup diagram for Watkins\A1\AFs Q(A) is shown i] In Chapter &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;, we unified Q-learning and Expected Sarsa in the
off-po the latter, which includes Q-learning as a special case, and generalizes
target policies, and in the previous section of this chapter we completed of
Expected Sarsa by generalizing it to off-policy eligibility traces. however, we
distinguished multi-step Expected Sarsa from multi-step where the latter
retained the property of not using importance sampli then to present the
eligibility trace version of Tree Backup, which we &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;Backup(A),&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; or &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;TB(A)&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; for short. This is arguable the true successor because it retains
its appealing lack of importance sampling even th applied to off-policy data.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:39.15pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The concept of TB(A) is straightforward.
As shown in its backup d ure 12.13, the tree backups of each length (from
Section 7.5) are weight way dependent on the bootstrapping parameter A. To get
the deta with the right indexes on the general bootstrapping and discounting is
best to start with a recursive form (12.26) for the A-return using&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=942 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:9.5pt;mso-line-height-rule:
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&lt;p class=851 align=left style=&#39;margin-top:0cm;margin-right:8.0pt;margin-bottom:
0cm;margin-left:288.0pt;margin-bottom:.0001pt;text-align:left;line-height:22.1pt;
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A&lt;sub&gt;t&lt;/sub&gt; &lt;sup&gt;S&lt;/sup&gt;t+i &lt;sup&gt;R&lt;/sup&gt;t+i At+i&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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&lt;p class=afffff6 align=right style=&#39;margin-top:0cm;margin-right:30.0pt;
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lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;X&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+i&lt;sup&gt;n&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+i&lt;sup&gt;|S&lt;/sup&gt;t+i^&lt;sup&gt;G&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;\A3\BB&lt;/sup&gt;&lt;span
lang=EN-US&gt;+i &lt;sup&gt;- q&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;(&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+i&lt;sup&gt;,A&lt;/sup&gt;t+i, &lt;sup&gt;w&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
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&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:8.0pt;margin-bottom:0cm;
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class=2f&gt;&lt;span lang=EN-US&gt;As per the usual pattern, it can also be written
approximately (ignoring changes in the approximate value function) as a sum of
TD errors,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
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error (12.34). Following the same steps as in the previous section, we arrive
at a special eligibility trace update involving the target-policy probabilities
of the selected actions,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
    0cm;margin-left:5.0pt;margin-bottom:.0001pt;text-align:left;line-height:
    11.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=20ptExact4&gt;&lt;span lang=EN-US style=&#39;font-size:11.0pt;letter-spacing:
    0pt&#39;&gt;(12.38)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;et == 7tXtn(At|St)et_i + Vq(St,
At, wt).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;This, together with the
usual parameter-update rule (12.7), defines the TB(X) al&amp;shy;gorithm. Like all
semi-gradient algorithms, TB(X) is not guaranteed to be stable when used with
off-policy data and with a powerful function approximator. For that it would
have to be combined with one of the methods presented in the next two sections.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection332&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l99 level1 lfo54;tab-stops:59.1pt;background:transparent&#39;&gt;&lt;a
name=bookmark212&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;12.11&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Stable Off-policy Methods with
Traces&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Several methods using
eligibility traces have been proposed that achieve guarantees of stability
under off-policy training, and here we present four of the most important using
this book\A1\AFs standard notation, including general bootstrapping and discount&amp;shy;ing
functions. All are based on either the Gradient-TD or the Emphatic-TD ideas
presented in Sections 11.7 and 11.8. All the algorithms assume linear function
ap&amp;shy;proximation, though extensions to nonlinear function approximation can also
be found in the literature.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
12.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;GTD(A)&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; is the eligibility-trace algorithm analogous to TDC, the better of
the two state-value Gradient-TD prediction algorithms discussed in Section
11.7. It\A1\AFs goal is to learn a parameter &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t such that {)(s,&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;) ==
&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;(s&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUfff&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUfff&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\B0\D1&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;Vn(s)
even from data that is due to following another policy b. Its update is&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.05pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:right 398.75pt;
background:transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t+i = &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t + &lt;/span&gt;&lt;/span&gt;&lt;span class=-1pt1&gt;&lt;span
lang=EN-US&gt;a8t&lt;sup&gt;s&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;a7t+i(1 &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;At+i) (&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;f&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t) &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t+i,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(12.39)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;with 8|, &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t, and pt defined in the usual ways for state values (12.29) (12.31)
(11.1), and&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:11.25pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:right 398.75pt;
background:transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t+l &lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUfff0&gt;&lt;span lang=EN-US style=&#39;font-size:11.5pt;mso-ansi-language:
EN-US&#39;&gt;=&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUfff0&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;¬\BA\C3&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span
lang=EN-US&gt;P&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; (&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;v&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t) &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(12.40)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;where, as in Section 11.7, &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;v G &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;R&lt;sup&gt;d&lt;/sup&gt; is a vector of the same dimension as
&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;, initialized to &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;o = 0, and P &amp;gt; 0 is a second step-size parameter.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:2.4pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
12.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;GQ(A)&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; is the Gradient-TD algorithm for action values with eligibility
traces. It\A1\AFs goal is to learn a parameter &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t such that q(s, a, &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t) == &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;(s,
a&lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUfff&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUfff&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\B0\D1&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;q^(s,
a) from off- policy data. If the target policy is e-greedy, or otherwise biased
toward the greedy policy for q, then GQ(A) can be used as a control algorithm.
Its update is&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:25.45pt;mso-line-height-rule:exactly;
tab-stops:right 398.75pt;background:transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t+i = &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t +
a8t*&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t+i(1 &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;At+i) (&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;f&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t) &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t+i,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(12.41)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:25.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;where &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t is the average feature vector for St under the
target policy,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:25.45pt;mso-line-height-rule:exactly;
tab-stops:right 398.75pt;background:transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t y^n(a&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;St)&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;(St,a),&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(12.42)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=208 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.5pt;
margin-left:58.0pt;line-height:8.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=205&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.5pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;8^ is the expectation form of the TD error, which
can be written,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.05pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:right 398.75pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;8&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t&lt;sup&gt;a&lt;/sup&gt; == &lt;sup&gt;R&lt;/sup&gt;t+i + 7t+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;x&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t+i &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;- w&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;x&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(12&lt;/sup&gt;.&lt;sup&gt;43&lt;/sup&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t is defined in the usual ways for action values
(12.35), and the rest is as in GTD(A), including the update for &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t (12.40).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:12.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=affff&gt;&lt;span lang=EN-US&gt;HTD(A)&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; is a hybrid state-value algorithm combining
aspects of GTD(A) and TD(A). Its most appealing feature is that it is a strict
generalization of TD(A) to off-policy learning, meaning that if the behavior
policy happens to be the same as the target policy, then HTD(A) becomes the
same as TD(A), which is not true for GTD(A). This is appealing because TD(A) is
often faster than GTD(A) when both&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:
0cm;margin-left:0cm;margin-bottom:.0001pt;text-align:left;line-height:13.7pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;algorithms converge, and TD(X) requires setting only a single step
size. HTD(X) is defined by&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection333&gt;

&lt;p class=MsoNormal style=&#39;line-height:10.25pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection334&gt;

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&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;=&lt;sup&gt;v&lt;/sup&gt;t + &lt;/span&gt;&lt;/span&gt;&lt;span
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class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
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lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
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tab-stops:right 281.75pt;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;==Pt(7&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Xtet-&lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;+ xt),&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&#39;&amp;quot;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;line-height:12.0pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;=&lt;sup&gt;.&lt;/sup&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;sub&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/sub&gt;&lt;span lang=EN-US&gt;Xte&lt;sub&gt;t&lt;/sub&gt;&lt;sup&gt;b&lt;/sup&gt;
&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt4&gt;&lt;sub&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
class=295pt4&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;+ xt,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection335&gt;

&lt;p class=MsoNormal style=&#39;line-height:9.2pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
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&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection336&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;where P &amp;gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; again is a second step-size parameter that becomes irrelevant in
the on-policy case in which &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;b&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; = n. In addition to the second set of weights, vt, HTD(X) also has
a second set of eligibility traces, ej?. These are a conventional accumulating
eligibility trace for the behavior policy and become equal to et if all the pt
are &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;, which causes the second term in the wt update to be
zero and the overall update to reduce to TD(X).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2ArialUnicodeMS6&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Emphatic TD(&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS6&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS7&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;is the extension of the one-step Emphatic-TD
algorithm from Section 11.8 to eligibility traces. The resultant algorithm
retains strong off-policy convergence guarantees while enabling any degree of
bootstrapping, albiet at the cost of high variance and potentially slow
convergence. Emphatic TD(X) is defined by&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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   &lt;tr&gt;
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    &lt;p class=970 style=&#39;margin-top:0cm;margin-right:4.0pt;margin-bottom:0cm;
    margin-left:5.0pt;margin-bottom:.0001pt;background:transparent&#39;&gt;&lt;span
    class=974pt&gt;&lt;span lang=EN-US style=&#39;font-size:4.0pt;letter-spacing:1.5pt&#39;&gt;ittt
    &lt;/span&gt;&lt;/span&gt;&lt;span class=9765pt&gt;&lt;span style=&#39;font-size:6.5pt;mso-ansi-language:
    ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;letter-spacing:3.0pt;mso-ansi-language:
    ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US style=&#39;letter-spacing:3.0pt&#39;&gt;e MF&lt;/span&gt;&lt;/p&gt;
    &lt;p class=71 style=&#39;margin-left:5.0pt;text-align:justify;text-justify:inter-ideograph;
    line-height:10.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=70ptExact&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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  &lt;/table&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;![if !RotText]&gt;&lt;img width=50 height=87
src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image143.png&#34;
align=left hspace=14 style=&#39;margin-left:-7px;margin-right:7px;margin-top:17px;
margin-bottom:20px&#39; alt=&#34;Text Box: ittt ʮ e MF&amp;#13;&amp;#10;A&amp;#13;&amp;#10;&#34; v:shapes=&#34;Text_x0020_Box_x0020_211&#34;
class=shape v:dpi=&#34;96&#34;&gt;&lt;![endif]&gt;&lt;span class=affff&gt;&lt;span lang=EN-US&gt;O&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf5&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;+ a5t&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t+i + 7t+i&lt;sup&gt;o&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;Tx&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t+i &lt;sup&gt;- O&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;Tx&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:14.9pt;mso-line-height-rule:exactly;tab-stops:center 192.05pt right 326.7pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;pt(&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;71&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;Xt&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;i + Mt&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t),&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;with
&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;e_&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;i = &lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;0&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;(12.45)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:14.9pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;X&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span lang=EN-US&gt;h&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt; - X&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t&lt;sup&gt;)F&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.75pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:center 192.05pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;pt&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;_&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;i7tFt&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;i + It,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;with
Fo = i(So),&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;where Mt &amp;gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; is the general form of &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS6&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;emphasis,&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS7&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Ft &amp;gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; is termed the &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS6&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;followon trace, &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;and It &amp;gt; 0 is the &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS6&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;interest,&lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS7&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;as described in Section 11.8. Note that Mt, like 5t,
is not really an additional memory variable. It can be removed from the
algorithm by substituting its definition into the eligibility-trace equation.
Pseudocode and software for the true online version of &lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiUc&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;\CD\DFצ\DA\E0ذ&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;amp;^&lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiUc&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;\B2\B7\B6\A1&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span
lang=ZH-TW style=&#39;font-size:8.0pt;mso-ansi-language:ZH-TW&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiUc&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A3\A9&lt;/span&gt;&lt;span lang=EN-US&gt;are available on the
web (Sutton, 2015b).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:21.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;In the on-policy case (pt = 0, Vt), Emphatic-TDQ) is
similar to conventional TDQ), but still significantly different. In fact,
whereas Emphatic-TDfX) is guaranteed to converge for all state-dependent &lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU8&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;functions,
TD(X) is not. TD(X) is guaranteed convergent only for all constant &lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiUc&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span class=2f2&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;.&lt;/span&gt;&lt;span lang=EN-US&gt;See&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; Yu\A1\AFs counterexample (Ghiassian, Rafiee, and Sutton,
2016).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l99 level1 lfo54;tab-stops:58.35pt;background:transparent&#39;&gt;&lt;a
name=bookmark213&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;12.12&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Implementation Issues&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;It might at first appear that methods using
eligibility traces are much more com&amp;shy;plex than one-step methods. A naive
implementation would require every state (or state-action pair) to update both
its value estimate and its eligibility trace on every time step. This would not
be a problem for implementations on single-instruction, multiple-data, parallel
computers or in plausible neural implementations, but it is a problem for
implementations on conventional serial computers. Fortunately, for&lt;br
clear=all style=&#39;page-break-before:always&#39;&gt;
typical values of A and &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; the
eligibility traces of almost all states are almost always nearly zero; only
those that have recently been visited will have traces significantly greater
than zero. In practice, only these few states need to be updated to closely
approximate these algorithms.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:30.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;In practice, then, implementations on conventional
computers may keep track of and update only the few states with nonzero traces.
Using this trick, the com&amp;shy;putational expense of using traces is typically just
a few times that of a one-step method. The exact multiple of course depends on
A and &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; and on the expense of the other computations. Note
that the tabular case is in some sense the worst case for the computational
complexity of eligibility traces. When function approximation is used, the
computational advantages of not using traces generally decrease. For example,
if artificial neural networks and backpropagation are used, then eligibility
traces generally cause only a doubling of the required memory and computation
per step. Truncated A-return methods (Section 12.3) can be computationally
efficient on conventional computers though always require some additional
memory.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l99 level1 lfo54;tab-stops:58.1pt;background:transparent&#39;&gt;&lt;a
name=bookmark214&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;12.13&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Conclusions&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Eligibility traces in conjunction with TD errors
provide an efficient, incremental way of shifting and choosing between Monte
Carlo and TD methods. The atomic multi&amp;shy;step methods of Chapter 7 also enabled
this, but eligibility trace methods are more general, often faster to learn,
and offer different computational complexity tradeoffs. This chapter has
offered an introduction to the elegant, emerging theoretical under&amp;shy;standing of
eligibility traces for on- and off-policy learning and for variable boot&amp;shy;strapping
and discounting. One aspect of this elegant theory is true online methods,
which exactly reproduce the behavior of expensive ideal methods while retaining
the computational congeniality of conventional TD methods. Another aspect is
the possi&amp;shy;bility of derivations that automatically convert from intuitive &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;forward-view&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; methods to more efficient incremental backward-view
algorithms. We illustrated this general idea in a derivation that started with
a classical, expensive Monte Carlo algorithm and ended with a cheap incremental
non-TD implementation using the same novel eligibility trace used in true
online TD methods.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
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transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;As we mentioned in Chapter 5,
Monte Carlo methods may have advantages in non-Markov tasks because they do not
bootstrap. Because eligibility traces make TD methods more like Monte Carlo
methods, they also can have advantages in these cases. If one wants to use TD
methods because of their other advantages, but the task is at least partially
non-Markov, then the use of an eligibility trace method is indicated.
Eligibility traces are the first line of defense against both long-delayed
rewards and non-Markov tasks.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
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transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;By adjusting A, we can place
eligibility trace methods anywhere along a continuum from Monte Carlo to
one-step TD methods. Where shall we place them? We do not yet have a good
theoretical answer to this question, but a clear empirical answer appears to be
emerging. On tasks with many steps per episode, or many steps&lt;br clear=all
style=&#39;page-break-before:always&#39;&gt;
within the half-life of discounting, it appears significantly better to use
eligibility traces than not to (e.g., see Figure 12.14). On the other hand, if
the traces are so long as to produce a pure Monte Carlo method, or nearly so,
then performance degrades sharply. An intermediate mixture appears to be the
best choice. Eligibility traces should be used to bring us toward Monte Carlo
methods, but not all the way there. In the future it may be possible to vary
the trade-off between TD and Monte Carlo methods more finely by using variable
A, but at present it is not clear how this can be done reliably and usefully.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=2f9 style=&#39;margin-top:15.85pt;margin-right:0cm;margin-bottom:0cm;
    margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
    line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=20ptExact4&gt;&lt;span lang=EN-US style=&#39;font-size:11.0pt;letter-spacing:
    0pt&#39;&gt;Figure 12.14: The effect of A on reinforcement learning performance in
    four different test problems. In all cases, &lt;/span&gt;&lt;/span&gt;&lt;span
    class=2CenturySchoolbook7&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;lower&lt;/span&gt;&lt;/span&gt;&lt;span
    class=2ArialUnicodeMSd&gt;&lt;span lang=EN-US style=&#39;font-size:7.0pt;letter-spacing:
    0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=20ptExact4&gt;&lt;span lang=EN-US
    style=&#39;font-size:11.0pt;letter-spacing:0pt&#39;&gt;numbers represent better
    performance. The two left panels are applications to simple continuous-state
    control tasks using the Sarsa(A) algorithm and tile coding, with either
    replacing or accumulating traces (Sutton, 1996). The upper-right panel is
    for policy evaluation on a random walk task using TD(A) (Singh and Sutton,
    1996). The lower right panel is unpublished data for the pole-balancing
    task (Example 3.4) from an earlier study (Sutton, 1984).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Methods using eligibility traces
require more computation than one-step methods, but in return they offer
significantly faster learning, particularly when rewards are delayed by many
steps. Thus it often makes sense to use eligibility traces when data are scarce
and cannot be repeatedly processed, as is often the case in on&amp;shy;line
applications. On the other hand, in off-line applications in which data can be
generated cheaply, perhaps from an inexpensive simulation, then it often does
not pay to use eligibility traces. In these cases the objective is not to get
more out of a&lt;br clear=all style=&#39;page-break-before:always&#39;&gt;
limited amount of data, but simply to process as much data as possible as quickly
as possible. In these cases the speedup per datum due to traces is typically
not worth their computational cost, and one-step methods are favored.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:20.15pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
19.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;Exercise 12.15 Write pseudocode for Expected Sarsa(A) with dutch
traces. \A1\F5 &lt;sup&gt;sK&lt;/sup&gt;Exercise 12.16 How might Double Expected Sarsa be
extended to eligibility traces? \A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.55pt;
margin-left:39.0pt;line-height:13.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;a name=bookmark215&gt;&lt;span lang=EN-US&gt;Bibliographical and
Historical Remarks&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.0pt;
margin-left:3.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;Eligibility traces came into reinforcement learning via the fecund
ideas of Klopf (1972). Our use of eligibility traces is based on Klopf\A1\AFs work
(Sutton, 1978a, 1978b, 1978c; Barto and Sutton, 1981a, 1981b; Sutton and Barto,
1981a; Barto, Sutton, and Anderson, 1983; Sutton, 1984). We may have been the
first to use the term \A1\B0eligibility trace\A1\B1 (Sutton and Barto, 1981). The idea
that stimuli produce aftereffects in the nervous system that are important for
learning is very old. See Chapter 14. Some of the earliest uses of eligibility
traces were in the actor-critic methods discussed in Chapter 13 (Barto, Sutton,
and Anderson, 1983; Sutton, 1984).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.0pt;
margin-left:39.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l77 level1 lfo56;
tab-stops:38.6pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;12.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The A-return and
its error-reduction properties were introduced by Watkins (1989) and further
developed by Jaakkola, Jordan and Singh (1994). The random walk results in this
and subsequent sections are new to this text, as are the terms \A1\B0forward view\A1\B1
and \A1\B0backward view.\A1\B1 The notion of A-return algorithm was introduced in the
first edition of this text. The more refined treatment presented here was
developed in conjunction with Harm van Seijen (e.g., van Seijen and Sutton,
2014).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.0pt;
margin-left:39.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l77 level1 lfo56;
tab-stops:38.6pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;12.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;TD(A) with
accumulating traces was introduced by Sutton (1988, 1984). Con&amp;shy;vergence in the
mean was proved by Dayan (1992), and with probability 1 by many researchers,
including Peng (1993), Dayan and Sejnowski (1994), and Tsitsiklis (1994) and
Gurvits, Lin, and Hanson (1994). The bound on the error of the asymptotic
A-dependent solution of linear TD(A) is due to Tsitsiklis and Van Roy (1997).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:16.15pt;
margin-left:39.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;12.3-5 Truncated TD methods were developed by Cichosz
(1995) and van Seijen (2016). True online TD(A) and the other ideas presented
in these sections are primarily due to work of van Seijen (van Seijen and
Sutton, 2014; van Seijen et al., 2016) Replacing traces are due to Singh and
Sutton (1996).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.25pt;
margin-left:39.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:12.0pt;mso-line-height-rule:exactly;mso-list:l54 level1 lfo57;
tab-stops:38.6pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;12.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;The material in
this section is from van Hasselt and Sutton (2015).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:39.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l54 level1 lfo57;
tab-stops:38.6pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;12.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Sarsa(A) with
accumulating traces was first explored as a control method by Rummery and
Niranjan (1994; Rummery, 1995). True Online Sarsa(A) was introduced by van
Seijen and Sutton (2014). The algorithm on page 321 was adapted from van Seijen
et al. (2016). The Mountain Car results were made new for this text, except for
Figure 12.11 which is adapted from van Seijen and Sutton (2014).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-35.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l54 level1 lfo57;
tab-stops:36.5pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;12.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Perhaps the
first published discussion of variable &lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU8&gt;&lt;span
style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;was by Watkins (1989),
who pointed out that the cutting off of the backup sequence (Figure 12.12) in
his Q(X) when a nongreedy action was selected could be implemented by
temporarily setting X to 0.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:4.15pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;Variable X was introduced in the first edition of this text. The
roots of variable &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; are in
the work on options (Sutton, Precup, and Singh, 1999) and its precursors
(Sutton, 1995), becoming explicit in the &lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiUc&gt;&lt;span
style=&#39;font-size:9.5pt&#39;&gt;\A9\96\DA\E0&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiUc&gt;&lt;span
style=&#39;font-size:9.5pt&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;\A3\A9&lt;/span&gt;&lt;span lang=EN-US&gt;paper (Maei and Sutton, 2010), which also
introduced some of these recursive forms for the X-returns.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.25pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;A different notion of variable &lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiU8&gt;&lt;span
style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;has been developed by
Yu (&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;2012&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-35.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l54 level1 lfo57;
tab-stops:36.5pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;12.9&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Off-policy
eligibility traces were introduced by Precup et al. (2000, 2001), then further
developed by Bertsekas and Yu (2009), Maei (2011; Maei and Sutton, 2010), Yu
(2012), and by Sutton, Mahmood, Precup, and van Hasselt (2014). The latter
reference in particular gives a powerful forward view for off- policy TD
methods with general state-dependent X and &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;. The presentation here seems to be new.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
-35.0pt;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l54 level1 lfo57;
tab-stops:36.5pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;12.10&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Watkins\A1\AFs Qp) is due to Watkins (1989). Convergence
has still not been proved for any control method for 0 &amp;lt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiUc&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;&amp;lt; 1. Tree Backup(X)
is due to Precup, Sutton, and Singh (2000).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:-35.0pt;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l54 level1 lfo57;tab-stops:36.5pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;12.11&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;GTDQ) is due to
Maei (2011). GQQ) is due to Maei and Sutton (2010). HTD(X) is due to White and
White (2016) based on the one-step HTD al&amp;shy;gorithm introduced by Hackman (2012).
Emphatic TD(X) was introduced by Sutton, Mahmood, and White (2016), who proved
its stability, then was proved to be convergent by Yu (2015a,b), and developed
further by Hallak, Tamar, Munos, and Mannor (2016).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection337&gt;

&lt;p class=8a style=&#39;margin-bottom:29.1pt;line-height:19.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=86&gt;&lt;span lang=EN-US&gt;Chapter 13&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=833 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:37.55pt;
margin-left:0cm;line-height:22.0pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark216&gt;&lt;span lang=EN-US&gt;Policy Gradient Methods&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;In this chapter we
consider something new. So far in this book almost all the methods have learned
the values of actions and then selected actions based on their estimated action
values&lt;a style=&#39;mso-footnote-id:ftn21&#39; href=&#34;#_ftn21&#34; name=&#34;_ftnref21&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[21]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;;
their policies would not even exist without the action-value estimates. In this
chapter we consider methods that instead learn a &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;parameterized policy&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; that can select actions without consulting a
value function. A value function may still be used to &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;learn&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; the policy parameter, but is not required for action selection. We
use the notation &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; G R&lt;sup&gt;d&lt;/sup&gt; for the policy\A1\AFs parameter vector.
Thus we write n(a|s, &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;)= Pr{At = a | St = s, &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookf4&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookf5&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=affff5&gt;&lt;span
lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;} for the
probability that action a is taken at time t given that the agent is in state s
at time t with parameter &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;. If a method uses a learned value function as
well, then the value function\A1\AFs weight vector is denoted &lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;G R&lt;sup&gt;m&lt;/sup&gt;, as in V(s,&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt4&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;In this chapter we consider methods for learning
the policy parameter based on the gradient of some performance measure J(&lt;/span&gt;&lt;/span&gt;&lt;span
class=affff5&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;) with respect to the policy parameter. These methods seek to &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;maximize&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; performance, so their updates approximate gradient &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;ascent&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; in J:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:28.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
mso-list:l8 level1 lfo58;tab-stops:right 401.9pt left 33.75pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;t+i = &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff5&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t + aVJ (&lt;/span&gt;&lt;/span&gt;&lt;span class=affff5&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;t),&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;(13.1)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=443 style=&#39;margin-left:36.0pt;line-height:10.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=44MingLiU&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;span class=441&gt;&lt;span lang=EN-US&gt;\A1\AA\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;where VJ(&lt;/span&gt;&lt;/span&gt;&lt;span
class=affff5&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t) is a stochastic estimate whose expectation approximates the
gradient of the performance measure with respect to its argument &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff5&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;t. All methods that follow this general schema we call &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;policy gradient methods&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;, whether or not they also learn an approximate
value function. Methods that learn approximations to both policy and value
functions are often called &lt;/span&gt;&lt;/span&gt;&lt;span class=affff&gt;&lt;span lang=EN-US&gt;actor-critic
methods,&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt; where \A1\AEactor\A1\AF is a
reference to the learned policy, and \A1\AEcritic\A1\AF refers to the learned value
function, usually a state- value function. First we treat the episodic case, in
which performance is defined as the value of the start state under the
parameterized policy, before going on to consider the continuing case, in which
performance is defined as the average reward rate, as in Section 10.3. In the
end we are able to express the algorithms for both cases in very similar terms.&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l46 level1 lfo59;tab-stops:44.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark217&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;13.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Policy Approximation and its
Advantages&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;In policy gradient methods, the policy can be
parameterized in any way, as long as n(a|s, &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;d)&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; is differentiable with respect to its parameters,
that is, as long as &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;Ve&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;n(a|s, &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;d) &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;exists
and is always finite. In practice, to ensure exploration we generally require
that the policy never becomes deterministic (i.e., that n(a|s, &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;d)&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; G &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;(0&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;) Vs, a, &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS9&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;6. &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;In this section we introduce the most common parameterization for
discrete action spaces and point out the advantages it offers over action-value
methods. Policy- based methods also offer useful ways of dealing with
continuous action spaces, as we describe later in Section 13.7.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;If the action space is discrete
and not too large, then a natural kind of param&amp;shy;eterization is to form
parameterized numerical preferences h(s, a, &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;) G &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS7&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;R &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;for
each state-action pair. The most preferred actions in each state are given the
highest probability of being selected, for example, according to an exponential
softmax dis&amp;shy;tribution:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;text-align:justify;
text-justify:inter-ideograph;line-height:12.0pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;exp(h(s, a, &lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;))&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;n(a|s, &lt;/span&gt;&lt;/span&gt;&lt;span
class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:1.25pt;text-align:justify;text-justify:inter-ideograph;
line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=295pt6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;E&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;b exp(h(s, b, &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiUd&gt;&lt;span style=&#39;font-size:7.0pt&#39;&gt;\A3\AC&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:7.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;where exp&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A2\C8&lt;/span&gt;&lt;span lang=EN-US&gt;=e&lt;sup&gt;x&lt;/sup&gt;, where
e c 2.71828 is the base of the natural logarithm. Note that the denominator
here is just what is required so that the action probabilities in each state to
sum to one. The preferences themselves can be parameterized arbitrarily. For
example, they might be computed by a deep neural network, where &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; is the vector of all the connection weights of the
network (as in the AlphaGo system described in Section 16.7). Or the
preferences could simply be linear in features,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.25pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
12.0pt;mso-line-height-rule:exactly;tab-stops:right 400.25pt;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;h(s, a, &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;) = &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt6&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;6&lt;sup&gt;T&lt;/sup&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;(s, a),&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(13.3)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;using feature vectors &lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;(s, a) G R&lt;sup&gt;d&lt;/sup&gt; constructed by any of the
methods described in Chapter 9.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;An immediate advantage of
selecting actions according to the softmax in action preferences (13.2) is that
the approximate policy can approach determinism, whereas with e-greedy action
selection over action values there is always an &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; probability of selecting a random action. Of course,
one could select according to a softmax over action values, but this alone
would not approach determinism. Instead, the action- value estimates would
converge to their corresponding true values, which would differ by a finite
amount, translating to specific probabilities other than 0 and 1. If the
softmax included a temperature parameter, then the temperature could be reduced
over time to approach determinism, but in practice it would be difficult to
choose the reduction schedule, or even the initial temperature, without more
knowledge of the true action values than we would like to assume. Action
preferences are different because they do not approach specific values; instead
they are driven to produce the optimal stochastic policy. If the optimal policy
is deterministic, then the preferences of the optimal actions will be driven
infinitely higher than all suboptimal actions (if permited by the
parameterization).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Perhaps the simplest advantage
that policy parameterization may have over action- value parameterization is
that the policy may be a simpler function to approximate.&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.55pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Problems vary in the complexity of their policies and
action-value functions. For some, the action-value function is simpler and thus
easier to approximate. For others, the policy is simpler. In the latter case a
policy-based method will typically be faster to learn and yield a superior
asymptotic policy (as seems to be the case with Tetris; see \A1\ECimsek, AlgcSrta,
and Kothiyal, 2016).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;In problems with significant function approximation,
the best approximate policy may be stochastic. For example, in card games with
imperfect information the opti&amp;shy;mal play is often to do two different things
with specific probabilities, such as when bluffing in Poker. Action-value
methods have no natural way of finding stochastic op&amp;shy;timal policies, whereas
policy approximating methods can, as shown in Example 13.1. This is a third
significant advantage of policy-based methods.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:6.65pt;text-align:justify;text-justify:inter-ideograph;
text-indent:15.0pt;line-height:12.0pt;mso-line-height-rule:exactly;background:
black&#39;&gt;&lt;span class=2f0&gt;&lt;span lang=EN-US&gt;Example 13.1 Short corridor with
switched actions&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;Consider the small corridor gridworld shown inset in
the graph below. The reward is -1 per step, as usual. In each of the three
nonterminal states there are only two actions, &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;right &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;left&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;. These actions have their usual consequences in the first and third
states, but in the second state they are reversed, so that &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;right &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;moves to the left and &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;left &lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;moves to the right. The problem is difficult because
all the states appear identical under the function approximation. In
particular, we define &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;(s, &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;right&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;)=
=[&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;]&lt;sup&gt;T&lt;/sup&gt;
and &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;(s, &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;left&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;)= [0,1]&lt;sup&gt;T&lt;/sup&gt;, for all s. An action-value
method with e-greedy action selection is forced to choose between just two
policies: choosing &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;right &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;with
high probability&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l87 level1 lfo60;
tab-stops:24.65pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;1&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;- s&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;/2&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; on all
steps or choosing &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;left &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;with
the same high probability on all time steps. If &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; = 0.1, then these two policies achieve a value (at
the start state) of less than -44 and -82, respectively, as shown in the graph.
A method can do significantly better if it can learn a specific probability
with which to select &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;right&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;. The best probability is about 0.59, which achieves a value of
about&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=834 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.3pt;
margin-left:25.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;11&lt;/span&gt;&lt;span class=8312pt&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;span
class=8312pt&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:244.3pt;mso-element-frame-height:
130.8pt;mso-element-frame-hspace:79.2pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:135.4pt;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=431 height=174&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=174 style=&#39;padding-top:0cm;padding-right:
  79.2pt;padding-bottom:0cm;padding-left:79.2pt&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:244.3pt;
  mso-element-frame-height:130.8pt;mso-element-frame-hspace:79.2pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:135.4pt;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_55&#34; o:spid=&#34;_x0000_i1065&#34;
   type=&#34;#_x0000_t75&#34; alt=&#34;image146&#34; style=&#39;width:243.75pt;height:131.25pt;
   visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image149.jpg&#34;
    o:title=&#34;image146&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:53.3pt;mso-element-frame-height:
13.3pt;mso-element-frame-hspace:57.1pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:79.25pt;mso-element-top:48.55pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=147 height=18&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=18 style=&#39;padding-top:0cm;padding-right:
  57.1pt;padding-bottom:0cm;padding-left:57.1pt&#39;&gt;
  &lt;p class=afffff8 align=left style=&#39;text-align:left;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:53.3pt;mso-element-frame-height:13.3pt;mso-element-frame-hspace:
  57.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:79.25pt;mso-element-top:
  48.55pt&#39;&gt;&lt;span class=affff6&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;J&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
  class=affff1&gt;&lt;span lang=EN-US&gt; (&amp;#10003;) = &lt;/span&gt;&lt;/span&gt;&lt;span class=affff6&gt;&lt;sup&gt;&lt;span
  lang=EN-US&gt;v&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;^e&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:106.7pt;mso-element-frame-height:
9.35pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
mso-element-anchor-horizontal:column;mso-element-left:221.9pt;mso-element-top:
138.4pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=142 height=12&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=12 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=6c style=&#39;line-height:8.5pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:106.7pt;mso-element-frame-height:
  9.35pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:221.9pt;mso-element-top:
  138.4pt&#39;&gt;&lt;span class=68&gt;&lt;span lang=EN-US&gt;probability of right action&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:21.05pt;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:right 398.65pt;
background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;Exercise 13.1 Use your
knowledge of the gridworld and its dynamics to determine an &lt;/span&gt;&lt;/span&gt;&lt;span
class=2ArialUnicodeMS9&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;exact&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt; symbolic expression for the optimal probability of
selecting the &lt;/span&gt;&lt;/span&gt;&lt;span class=2ArialUnicodeMS8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;right &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;action
in Example 13.1.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:33.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;Finally, we note that the choice of policy
parameterization is sometimes a good way of injecting prior knowledge about the
desired form of the policy into the rein&amp;shy;forcement learning system.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l46 level1 lfo59;tab-stops:44.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark218&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;13.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;The Policy Gradient Theorem&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;In addition to the
practical advantages of policy parameterization over e-greedy action selection,
there is also an important theoretical advantage. With continuous policy
parameterization, the action probabilities changes smoothly as a function of
the learned parameter, whereas in e-greedy selection the action probabilities
may change dramatically for an arbitrarily small change in the estimated action
values, if that change results in a different action having the maximal value.
Because of this, stronger convergence guarantees are available for
policy-gradient methods than for action-value methods. In particular, it is the
continuity of the parameterized policy that enables policy-gradient methods
that approximate gradient ascent (13.1).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;The episodic
and continuing cases define the performance measure, J(&lt;/span&gt;&lt;/span&gt;&lt;span
class=affff5&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;), differ&amp;shy;ently and thus have to be treated separately to some
extent. Nevertheless, we will try to present both cases uniformly, and we
develop a notation so that the major theoretical results can be decribed with a
single set of equations.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:19.55pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;In this section we treat the episodic case, for
which we define the performance measure as the value of the start state of the
episode. We can simplify the notation without losing any meaningful generality
by assuming that every episode starts in some particular (non-random) state so.
Then, in the episodic case we define perfor&amp;shy;mance as&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:16.0pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:right 398.3pt;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;J (&lt;/span&gt;&lt;/span&gt;&lt;span
class=affff5&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;) = v &lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiUfff0&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;ߵ&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;(so),&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(13.4)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:1.05pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;where is the true
value function for , the policy determined by &lt;/span&gt;&lt;/span&gt;&lt;span class=affff5&gt;&lt;span
lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;With
function approximation, it may seem challenging to change the policy param&amp;shy;eter
in a way that ensures improvement. The problem is that performance depends on
both the action selections and the distribution of states in which those selections
are made, and that both of these are affected by the policy parametre. Given a
state, the effect of the policy parameter on the actions, and thus on reward,
can be computed in a relatively straightforward way from knowledge of the
parameteriza&amp;shy;tion. But the effect of the policy on the state distribution is
completely a function of the environment and is typically unknown. How can we
estimate the performance gradient with respect to the policy parameter, when
the gradient depends on the unknown effect of changing the policy on the state
distribution?&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Fortunately,
there is an excellent theoretical answer to this challenge in the form of the &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;policy gradient theorem,&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; which provides us an analytic expression for the
gradient of performance with respect to the policy parameter (which is what we
need to approximate for gradient ascent (13.1)) that does &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;not&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; involve the derivative&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection338&gt;

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&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection339&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:11.55pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;of the state
distribution. The policy gradient theorem is that&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-bottom:15.75pt;text-align:justify;text-justify:inter-ideograph;
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   &lt;tr&gt;
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    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=0ptExact6&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(13.5)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
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 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;VJ(&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;) = &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt6&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;L &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;quot;&lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiUc&gt;&lt;span
style=&#39;font-size:9.5pt&#39;&gt;آ&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;(s) E
qn(s, a)Ven(a|s, &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt6&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;),&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;where the gradients in all cases are the column
vectors of partial derivatives with respect to the components of &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff&gt;&lt;span lang=EN-US&gt;6,&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt; and n denotes the policy corresponding to parameter vector &lt;/span&gt;&lt;/span&gt;&lt;span
class=affff5&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span
lang=EN-US&gt;. The notion of the distribution &lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUfff&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;here
should be clear from what transpired in Chapters 9 and 10. That is, in the
episodic case, (s) is defined to be the expected number of time steps t on
which St = s in a randomly generated episode starting in so and following n and
the dynamics of the MDP. The policy gradient theorem is proved for the episodic
case in the box.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=135 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l46 level1 lfo59;tab-stops:44.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark219&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;13.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;REINFORCE: Monte Carlo Policy
Gradient&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;We are now ready for
our first policy-gradient learning algorithm. Recall our overall strategy of
stochastic gradient ascent (13.1), for which we need a way of obtaining samples
whose expectation is equal to the performance gradient. The policy gradient
theorem gives us an exact expression for this gradient; all we need is some way
of sampling whose expectation equals or approximates this expression. Notice
that the right-hand side of the policy gradient theorem is a sum over states
weighted by how often the states occurs under the target policy n, weighted
again by &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt; times how many steps it takes to get to those
states; if we just follow n we will encounter states in these proportions,
which we can then weight by &lt;/span&gt;&lt;/span&gt;&lt;span class=9pta&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; to preserve the expected value.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:11.55pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;Thus&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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    &lt;p class=afffff6 style=&#39;margin-left:5.0pt;text-indent:0cm;line-height:9.0pt;
    mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=0ptExact6&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;(13.5)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;VJ(&lt;/span&gt;&lt;/span&gt;&lt;span class=295pt6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;) = &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt6&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;L &lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;quot;&lt;/span&gt;&lt;/span&gt;&lt;span class=2MingLiUc&gt;&lt;span
style=&#39;font-size:9.5pt&#39;&gt;آ&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;(s) E
qn(s, a)V&lt;/span&gt;&lt;/span&gt;&lt;span class=28pt&gt;&lt;sub&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt&#39;&gt;0&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;n(a|s, &lt;/span&gt;&lt;/span&gt;&lt;span
class=295pt6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;),&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
15.75pt;margin-left:73.0pt;text-align:left;line-height:12.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a name=bookmark220&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;En &lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;span style=&#39;mso-bookmark:bookmark220&#39;&gt;&lt;span
class=2ArialUnicodeMS6&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark220&#39;&gt;&lt;span class=2ArialUnicodeMSe&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;*^2,&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt; qn&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark220&#39;&gt;&lt;span class=2ArialUnicodeMS7&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;St,a&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark220&#39;&gt;&lt;span class=2ArialUnicodeMS7&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;V&lt;sub&gt;0&lt;/sub&gt;n&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark220&#39;&gt;&lt;span class=2ArialUnicodeMS7&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;a|St, &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark220&#39;&gt;&lt;span class=295pt6&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark220&#39;&gt;&lt;span
class=2ArialUnicodeMS7&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span
class=2f&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:11.45pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;This is good progress, and we would like to carry
it further and handle the action in the same way (replacing a with the sample
action At). The remaining part of the expectation above is a sum over actions;
if only each term was weighted by the probability of selecting the actions,
that is, according to n(a|St, &lt;/span&gt;&lt;/span&gt;&lt;span class=affff5&gt;&lt;span
lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=afffc&gt;&lt;span lang=EN-US&gt;). So let us make
it that way, multiplying and dividing by this probability. Continuing from the
previous equation, this gives us&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.75pt;
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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=344 style=&#39;line-height:11.0pt;mso-line-height-rule:exactly;
    background:transparent&#39;&gt;&lt;span class=34Exact2&gt;&lt;span lang=EN-US
    style=&#39;font-size:11.0pt;letter-spacing:0pt&#39;&gt;VJ(&lt;/span&gt;&lt;/span&gt;&lt;span
    class=3495pt&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;letter-spacing:0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
    class=34Exact2&gt;&lt;span lang=EN-US style=&#39;font-size:11.0pt;letter-spacing:
    0pt&#39;&gt;) = En 7^ n(a|St, &lt;/span&gt;&lt;/span&gt;&lt;span class=3495pt&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.5pt;letter-spacing:0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
    class=34Exact2&gt;&lt;span lang=EN-US style=&#39;font-size:11.0pt;letter-spacing:
    0pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=34MingLiU1&gt;&lt;span style=&#39;font-size:9.0pt;
    letter-spacing:-1.5pt;mso-ansi-language:ZH-TW&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span
    class=34Exact2&gt;&lt;span lang=EN-US style=&#39;font-size:11.0pt;letter-spacing:
    0pt&#39;&gt;(St, a)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=MsoNormal align=center style=&#39;text-align:center&#39;&gt;&lt;span lang=EN-US
    style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_93&#34; o:spid=&#34;_x0000_i1026&#34;
     type=&#34;#_x0000_t75&#34; alt=&#34;image147&#34; style=&#39;width:150pt;height:65.25pt;
     visibility:visible;mso-wrap-style:square&#39;&gt;
     &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image150.png&#34;
      o:title=&#34;image147&#34;/&gt;
    &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=2f4&gt;&lt;span lang=EN-US&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt; n(a|St, &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt6&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;)
n(a|St, &lt;/span&gt;&lt;/span&gt;&lt;span class=295pt6&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 align=right style=&#39;margin-top:0cm;margin-right:1.0pt;
margin-bottom:18.15pt;margin-left:0cm;text-align:right;text-indent:0cm;
line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;(replacing a by the sample At &lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUfff&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
class=afffc&gt;&lt;span lang=EN-US&gt;n)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f9 align=right style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:
0cm;margin-left:0cm;margin-bottom:.0001pt;text-align:right;line-height:12.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;(because En[Gt|St, &lt;/span&gt;&lt;/span&gt;&lt;span class=21pt&gt;&lt;span lang=EN-US&gt;At]=&lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiUc&gt;&lt;span style=&#39;font-size:9.5pt&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span class=2f&gt;&lt;span
lang=EN-US&gt;(St, At))&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all
style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.2pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;which is exactly what we want, a
quantity that we can sample on each time step whose expectation is equal to the
gradient. Using this sample to instantiate our generic stochastic gradient
ascent algorithm (13.1), we obtain the update&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:29.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.2pt;
mso-line-height-rule:exactly;mso-list:l11 level1 lfo61;tab-stops:64.0pt right 400.65pt left 64.05pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;sub&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:Batang&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sub&gt;&lt;![endif]&gt;&lt;span class=21Batang&gt;&lt;sub&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;, \A1\AAt &lt;sub&gt;G&lt;/sub&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A8\8C&lt;/span&gt;&lt;/span&gt;&lt;span class=21MingLiU6&gt;&lt;span
style=&#39;font-size:5.5pt;mso-ansi-language:ZH-TW&#39;&gt;\D2\D6&lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(a &lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU6&gt;&lt;span style=&#39;font-size:5.5pt;mso-ansi-language:ZH-TW&#39;&gt;\B6\D3&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;sub&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;(13&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:11.8pt;
margin-left:29.0pt;line-height:13.2pt;mso-line-height-rule:exactly;tab-stops:
right 400.65pt;background:transparent&#39;&gt;&lt;a name=bookmark221&gt;&lt;span
class=21Batang&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;+&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;a
style=&#39;mso-footnote-id:ftn22&#39; href=&#34;#_ftn22&#34; name=&#34;_ftnref22&#34; title=&#34;&#34;&gt;&lt;span
style=&#39;mso-bookmark:bookmark221&#39;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[22]&lt;/span&gt;&lt;/sup&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark221&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; = &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark221&#39;&gt;&lt;span class=21Batang&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; + &lt;sup&gt;a7 Gt&lt;/sup&gt; n(At|St, &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark221&#39;&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;) .&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(13&lt;/sup&gt;.&lt;sup&gt;6)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:232.1pt center 250.1pt 272.2pt left 309.9pt right 400.6pt;
background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;We call this algorithm
REINFORCE (after Williams, 1992). Its update has an intuitive appeal. Each
increment is proportional to the product of a return Gt and a vector, the
gradient of the probability of taking the action actually taken, divided by the
probability of taking that action. The vector is the direction in parameter
space that most increases the probability of repeating the action At on future
visits to state&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:232.05pt center 250.1pt 272.2pt left 309.85pt right 400.65pt;
background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;St. The update
increases the parameter vector&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;in&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;this&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;direction&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;proportional&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;to
the&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:232.05pt right 307.0pt left 309.85pt;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;return, and inversely proportional to the action&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;probability.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;The&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;former makes sense&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;because it
causes the parameter to move most in the directions that favor actions that
yield the highest return. The latter makes sense because otherwise actions that
are selected frequently are at an advantage (the updates will be more often in
their direction) and might win out even if they do not yield the highest return.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:16.35pt;
margin-left:1.0pt;text-indent:15.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Note that
REINFORCE uses the complete return from time t, which includes all future
rewards up until the end of the episode. In this sense REINFORCE is a Monte
Carlo algorithm and is well defined only for the episodic case with all updates
made in retrospect after the episode is completed (like the Monte Carlo
algorithms in Chapter 5). This is shown explicitly in the boxed pseudocode
below.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.5pt;
margin-left:1.0pt;text-indent:15.0pt;line-height:8.0pt;mso-line-height-rule:
exactly;background:black&#39;&gt;&lt;span class=21c&gt;&lt;span lang=EN-US&gt;REINFORCE, A
Monte-Carlo Policy-Gradient Method (episodic)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:14.0pt;margin-bottom:
0cm;margin-left:16.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Input: a differentiable policy parameterization n(a&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;s, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;), &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;a &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;A,&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; s &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;S, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; G &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;R&lt;sup&gt;d&lt;/sup&gt; Initialize policy parameter &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6 &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;Repeat forever:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:29.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Generate an
episode S&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;o&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;, A&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;o&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;, R&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=211pt&gt;&lt;span
lang=EN-US&gt;,...,&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; St_&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;, At_&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;, Rt, following n(&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;-|-&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:29.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;For each step
of the episode &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; = &lt;/span&gt;&lt;/span&gt;&lt;span class=211pt&gt;&lt;span lang=EN-US&gt;0,...,&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; T &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;1:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:44.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;G return from
step t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:44.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;mso-list:l56 level1 lfo62;tab-stops:53.85pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;i&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:Batang&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/i&gt;&lt;![endif]&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6 &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;+ &amp;laquo;&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;e &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;logn(At&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;St, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;As a stochastic gradient method,
REINFORCE has good theoretical convergence properties. By construction, the
expected update over an episode is in the same direction as the performance
gradient&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:
7.5pt&#39;&gt;.&lt;a style=&#39;mso-footnote-id:ftn23&#39; href=&#34;#_ftn23&#34; name=&#34;_ftnref23&#34;
title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=21Batang0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[23]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; This assures an improvement in expected performance
for sufficiently small a, and convergence to a local optimum under standard
stochastic approximation conditions for decreasing a. However, as a Monte Carlo
method REINFORCE may be of high variance and thus slow to learn.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:24.8pt;
margin-left:1.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Exercise
13.2 &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Prove (13.7) using the
definitions and elementary calculus. &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;\A1\F5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=1140 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.6pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l94 level1 lfo63;tab-stops:45.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark222&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;13.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;REINFORCE with Baseline&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.75pt;
margin-left:1.0pt;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The policy gradient theorem
(13.5) can be generalized to include a comparison of the action value to an
arbitrary &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;baseline&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; b(s):&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.4pt;
margin-left:29.0pt;line-height:9.0pt;mso-line-height-rule:exactly;tab-stops:
right 399.55pt;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;VJ(O) =
L (s) L &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=21MingLiU&gt;&lt;span style=&#39;font-size:9.0pt&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;(s,a) - b(s^ &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span
lang=EN-US&gt;Ve&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;n(a|s, O).&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(13.8)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=208 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.35pt;
margin-left:79.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
8.0pt;mso-line-height-rule:exactly;tab-stops:123.4pt;background:transparent&#39;&gt;&lt;span
class=201&gt;&lt;span lang=EN-US&gt;s&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;a&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.15pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The baseline can be any function,
even a random variable, as long as it does not vary with a; the equation
remains true, because the the subtracted quantity is zero:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.3pt;
margin-left:29.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;y^b(s)V&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;n(a|s, O) = b(s)V&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;e &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;^ n(a|s, O) = b(s)V&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;e &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;1 &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;=0&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; Vs G
S.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.35pt;
margin-left:29.0pt;line-height:8.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;aa&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;However, after
we convert the policy gradient theorem to an expectation and an update rule,
using the same steps as in the previous section, then the baseline can have a
significant effect on the &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;variance&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; of the update rule.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:22.15pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The update rule that we end up with
is a new version of REINFORCE that includes a general baseline:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.0pt;
margin-left:29.0pt;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:
231.3pt 34.75pt;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;Ot&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;+&lt;sup&gt;i&lt;/sup&gt; ^&lt;sup&gt;Ot&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;+&lt;sup&gt;a7&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;Gt - b(St)&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;. &lt;sup&gt;(13&lt;/sup&gt;.&lt;sup&gt;9)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;As the
baseline could be uniformly zero, this update is a strict generalization of
REINFORCE. In general, the baseline leaves the expected value of the update un&amp;shy;changed,
but it can have a large effect on its variance. For example, we saw in Section
2.8 that an analogous baseline can significantly reduce the variance (and thus
speed the learning) of gradient bandit algorithms. In the bandit algorithms the
baseline was just a number (the average of the rewards seen so far), but for
MDPs the baseline should vary with state. In some states all actions have high
values and we need a high baseline to differentiate the higher valued actions
from the less highly valued ones; in other states all actions will have low
values and a low baseline is appropriate.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection340&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:16.35pt;
margin-left:0cm;text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;One natural
choice for the baseline is an estimate of the state value, V(St,&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;), where &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w G &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;R&lt;sup&gt;m&lt;/sup&gt; is a weight vector learned by one of the methods
presented in previous chapters. Because REINFORCE is a Monte Carlo method for
learning the policy parameter, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;, it seems natural to also use a Monte Carlo method to learn the
state- value weights, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;. A
complete pseudocode algorithm for REINFORCE with baseline is given in the box
using such a learned state-value function as the baseline.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.25pt;
margin-left:0cm;text-indent:14.0pt;line-height:8.0pt;mso-line-height-rule:exactly;
background:black&#39;&gt;&lt;span class=21c&gt;&lt;span lang=EN-US&gt;REINFORCE with Baseline
(episodic)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:14.0pt;margin-bottom:
6.0pt;margin-left:15.0pt;text-align:left;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Input: a
differentiable policy parameterization n(a&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;s, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;), &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;a &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;A, s &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;S, &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;G R&lt;sup&gt;d&lt;/sup&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;Input: a differentiable state-value parameterization
V(s,&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;), &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;S, &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w G R&lt;sup&gt;m&lt;/sup&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;Parameters: step sizes a &amp;gt; 0, P &amp;gt; 0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:121.0pt;margin-bottom:
0cm;margin-left:15.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Initialize policy parameter &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;and state-value weights &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Repeat forever:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:30.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Generate an episode S&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;o&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;, A&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;o&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;, R&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
class=211pt&gt;&lt;span lang=EN-US&gt;,...,&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span class=21d&gt;&lt;span lang=EN-US&gt;t_&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;l&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span class=21e&gt;&lt;span
lang=EN-US&gt;t_&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=21e&gt;&lt;span lang=EN-US&gt;t,&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;
following n(&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;-|-&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batangf2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:30.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;For each step of the episode t = &lt;/span&gt;&lt;/span&gt;&lt;span class=211pt&gt;&lt;span
lang=EN-US&gt;0,...,&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; T &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;1:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:44.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:right 162.1pt;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;G&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;t&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;return from step t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:242.0pt;margin-bottom:0cm;
margin-left:44.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=75pt4&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;8&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookfa&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t &lt;sup&gt;-
&lt;/sup&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;V(S&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;span
class=CenturySchoolbookfa&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;,&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;w \A1\AA w &lt;/span&gt;&lt;span
class=CenturySchoolbookfa&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;+ P&lt;/span&gt;&lt;/span&gt;&lt;span
class=75pt4&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookfa&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Vw &lt;/span&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;V(S&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;span
class=CenturySchoolbookfa&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:24.0pt;
margin-left:44.0pt;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l3 level1 lfo64;tab-stops:53.85pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;+ a&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;^ log
n(A&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;t|&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.35pt;
margin-left:0cm;text-indent:14.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;This algorithm
has two step sizes, a and P. The step size for values (here P) is relatively
easy; in the linear case we have rules of thumb for setting it, such as P =
0.1/E[||xt||^]. For action values though it is much less clear. It depends on
the range of variation of the rewards and on the policy parameterization.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l94 level1 lfo63;tab-stops:44.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark223&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;13.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Actor\A1\AACritic Methods&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Although the
REINFORCE-with-baseline method learns both a policy and a state- value
function, we do not consider it to be an actor-critic method because its state-
value function is used only as a baseline, not as a critic. That is, it is not
used for bootstrapping (updating a state from the estimated values of
subsequent states), but only as a baseline for the state being updated. This is
a useful distinction, for only through bootstrapping do we introduce bias and
an asymptotic dependence on the quality of the function approximation. As we
have seen, the bias introduced through bootstrapping and reliance on the state
representation is often on balance beneficial because it reduces variance and
accelerates learning. REINFORCE with baseline is unbiased and will converge
asymptotically to a local minimum, but like all Monte Carlo methods it tends to
be slow to learn (of high variance) and inconvenient to implement online or for
continuing problems. As we have seen earlier in this book, with
temporal-difference methods we can eliminate these inconveniences, and through
multi-step methods we can flexibly choose the degree of bootstrapping. In order
to gain these advantages in the case of policy gradient methods we use actor-&lt;br
clear=all style=&#39;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;span class=ac&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;critic
methods with a true bootstrapping critic.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;First consider one-step actor-critic methods, the analog of the TD methods
intro&amp;shy;duced in Chapter &lt;/span&gt;&lt;span class=9ptb&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; such as TD(0),
Sarsa(0), and Q-learning. The main appeal of one-step methods is that they are
fully online and incremental, yet avoid the com&amp;shy;plexities of eligibility
traces. They are a special case of the eligibility trace methods, and not as
general, but easier to understand. One-step actor-critic methods replace the
full return of REINFORCE (13.9) with the one-step return (and use a learned
state-value function as the baseline) as follow:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:196.0pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=affffa&gt;&lt;span
lang=EN-US&gt;Ve &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;n(At&lt;span class=affffa&gt;|&lt;/span&gt;St,
O)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.6pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:6.75pt;
background:transparent&#39;&gt;&lt;span class=affffa&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;O&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookfa&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;+&lt;a style=&#39;mso-footnote-id:ftn24&#39; href=&#34;#_ftn24&#34; name=&#34;_ftnref24&#34;
title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;[24]&lt;/span&gt;&lt;/sup&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt; = &lt;span
class=affffa&gt;&lt;sup&gt;O&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
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style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+&lt;sup&gt;i - V(S&lt;/sup&gt;&lt;/span&gt;&lt;span
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lang=EN-US&gt;,&lt;span class=affffa&gt;w&lt;/span&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;7 n(A&lt;/span&gt;&lt;span
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lang=EN-US&gt;|S&lt;/span&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;span lang=EN-US
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class=12pt0&gt;&lt;sub&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;)&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:18.1pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;=&lt;span class=affffa&gt;O&lt;/span&gt;&lt;/span&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+ a&lt;/span&gt;&lt;span
class=9ptb&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookfa&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;R&lt;/span&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;span lang=EN-US
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&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
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style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;V&lt;/span&gt;&lt;/sup&gt;&lt;span
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lang=EN-US&gt;|S&lt;/span&gt;&lt;/sup&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;,&lt;span class=affffa&gt;&lt;sup&gt;O&lt;/sup&gt;&lt;/span&gt;&lt;sup&gt;)&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

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    &lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
    0cm;margin-left:5.0pt;margin-bottom:.0001pt;text-align:left;line-height:
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    class=210ptExact2&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;n(At|St, &lt;/span&gt;&lt;/span&gt;&lt;span
    class=21Batangf0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;O&lt;/span&gt;&lt;/span&gt;&lt;span
    class=210ptExact2&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;(13.10)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;(13.12)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.05pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;n(At|St, &lt;span class=affffa&gt;O&lt;/span&gt;)&#39;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;The natural state-value-function learning method to pair with this
is semi-gradient TD(0). Pseudocode for the complete algorithm is given in the
box below. Note that it is now a fully online, incremental algorithm, with
states, actions, and rewards processed as they occur and then never revisited.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.95pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
15.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:black&#39;&gt;&lt;span
class=af7&gt;&lt;span lang=EN-US&gt;One-step Actor-Critic (episodic)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:15.0pt;margin-bottom:6.0pt;
margin-left:16.0pt;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Input: a differentiable policy
parameterization n(a|s, &lt;span class=affffa&gt;O&lt;/span&gt;), Va G A, s G S, &lt;span
class=affffb&gt;O&lt;/span&gt; G R&lt;sup&gt;d&lt;/sup&gt; Input: a differentiable state-value
parameterization v(s,&lt;span class=affffa&gt;w&lt;/span&gt;), Vs G S, &lt;span class=affffa&gt;w
&lt;/span&gt;G R&lt;sup&gt;m&lt;/sup&gt; Parameters: step sizes a &amp;gt; 0, P &amp;gt; 0&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:118.0pt;margin-bottom:0cm;
margin-left:16.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
policy parameter &lt;span class=affffa&gt;O &lt;/span&gt;and state-value weights &lt;span
class=affffa&gt;w &lt;/span&gt;Repeat forever:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Initialize
S (first state of episode)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;I ^ 1&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;While S
is not terminal:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;A &lt;/span&gt;&lt;span class=MingLiUfff3&gt;&lt;span
style=&#39;font-size:11.5pt&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;n(-|S, &lt;span
class=affffa&gt;O&lt;/span&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Take action A, observe S&#39;, R&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:right 238.4pt;background:transparent&#39;&gt;&lt;span class=affffb&gt;&lt;span
lang=EN-US&gt;5&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; R + &lt;/span&gt;&lt;span class=9ptb&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;v(S&#39;,&lt;span
class=affffa&gt;w&lt;/span&gt;) - v(S,&lt;span class=affffa&gt;w&lt;/span&gt;)&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;(if &lt;span class=affffb&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;ح&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;is terminal, then {)(S&lt;sup&gt;/&lt;/sup&gt;,&lt;span
class=affffa&gt;w&lt;/span&gt;) = 0)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=affffa&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;\A1\AA &lt;span class=affffa&gt;w &lt;/span&gt;+ P5 Vw v(S,&lt;span class=affffa&gt;w&lt;/span&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l58 level1 lfo65;tab-stops:54.85pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;0&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;\A1\AA &lt;span class=affffa&gt;O &lt;/span&gt;+
aI5 V&lt;span class=affffa&gt;e &lt;/span&gt;log n(A|S, &lt;span class=affffa&gt;O&lt;/span&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
mso-list:l58 level1 lfo65;tab-stops:54.85pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;span class=9ptb&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;I&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:44.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:54.85pt 54.55pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;S&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;\A1\AA S&lt;span class=affffb&gt;&lt;sup&gt;f&lt;/sup&gt;&lt;/span&gt;&lt;br
clear=all style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
9.25pt;margin-left:16.0pt;text-align:left;line-height:8.0pt;mso-line-height-rule:
exactly;background:black&#39;&gt;&lt;span class=21c&gt;&lt;span lang=EN-US&gt;Actor-Critic with
Eligibility Traces (episodic)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:33.0pt;margin-bottom:
6.0pt;margin-left:16.0pt;text-align:left;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Input: a
differentiable policy parameterization n(a|s, &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;), Va G A, s G S, &lt;/span&gt;&lt;/span&gt;&lt;span class=21105pt&gt;&lt;span
lang=EN-US style=&#39;font-size:10.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;G R&lt;sup&gt;d&lt;/sup&gt; Input: a differentiable state-value parameterization
v(s,&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;), Vs G S, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;G R&lt;sup&gt;m&lt;/sup&gt; Parameters: step sizes &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;
&amp;gt; 0, ^ &amp;gt; 0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:33.0pt;margin-bottom:
0cm;margin-left:16.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Initialize policy parameter &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6 &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;and state-value weights &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Repeat forever (for each episode):&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:29.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Initialize S
(first state of episode)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:29.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;e&lt;sup&gt;e&lt;/sup&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;0 &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;(n-component
eligibility trace vector)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:29.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;0 &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;(m-component
eligibility trace vector)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:29.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;I \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:29.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;While S is not
terminal (for each time step):&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:43.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU&gt;&lt;span style=&#39;font-size:9.0pt&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;n(-|S, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:43.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Take action A,
observe S&lt;sup&gt;&#39;&lt;/sup&gt;, R&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:43.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:right 222.3pt;background:transparent&#39;&gt;&lt;span class=211&gt;&lt;span
lang=EN-US&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; \A1\AA R + &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;v(S&#39;,&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;) - v(S,&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;)&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;(if S&#39; is terminal, then {)(S&#39;,&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;) == 0)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:218.0pt;margin-bottom:
0cm;margin-left:43.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;+ I V&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;V(S,&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;e&lt;sup&gt;e&lt;/sup&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;e&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; e&lt;sup&gt;e&lt;/sup&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;+ I V&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;e &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;log n(A|S, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;^8&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=942 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:43.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l67 level1 lfo66;
tab-stops:50.6pt;background:transparent&#39;&gt;&lt;a name=bookmark224&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=94CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=941&gt;&lt;span
lang=EN-US&gt;6 &lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;span style=&#39;mso-bookmark:bookmark224&#39;&gt;&lt;span
class=94CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
class=941&gt;&lt;span lang=EN-US&gt;e&lt;sup&gt;e&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=5d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:43.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;mso-list:l12 level1 lfo67;tab-stops:50.6pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;I&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-begin&#39;&gt;&lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;TOC \o &amp;quot;1-5&amp;quot; \h \z &lt;span
style=&#39;mso-element:field-separator&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;span lang=EN-US&gt;&lt;span
class=54&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=5Batang2&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=54&gt;&lt;span lang=EN-US&gt;I&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=5d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:27.35pt;
margin-left:43.0pt;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
50.6pt;background:transparent&#39;&gt;&lt;span class=54&gt;&lt;span lang=EN-US&gt;S&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;\A1\AA S&#39;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=4f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.8pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l94 level1 lfo63;tab-stops:50.6pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;13.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=4b&gt;&lt;span lang=EN-US&gt;Policy Gradient
for Continuing Problems&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:19.0pt;margin-bottom:9.15pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;As discussed in Section 10.3, for continuing
problems without episode boundaries we need to define performance in terms of
the average rate of reward per time step:&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoToc2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:132.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:9.5pt;
mso-line-height-rule:exactly;mso-list:l49 level1 lfo68;tab-stops:150.5pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-end&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:29.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:normal;background:transparent&#39;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;J (&lt;span class=affffa&gt;6&lt;/span&gt;)&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;=&lt;/span&gt;&lt;span
class=MingLiUfff3&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;ʮ\A3\A9&lt;/span&gt;&lt;/span&gt;&lt;span
class=1pt7&gt;&lt;span lang=EN-US&gt;=l&lt;sup&gt;im&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;span
class=affffb&gt;tY^&lt;/span&gt; &lt;sup&gt;E[R&lt;/sup&gt;t I &lt;sup&gt;A&lt;/sup&gt;o&lt;/span&gt;&lt;span
class=MingLiUfff3&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t-i &lt;/span&gt;&lt;span class=MingLiUfff3&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;&amp;#12316;\DB\ED&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:96.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:normal;background:transparent&#39;&gt;&lt;span
class=MingLiUfff3&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C1\CB&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;400 &lt;/span&gt;&lt;span class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;
mso-ansi-language:ZH-TW&#39;&gt;\81A&lt;/span&gt;&lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt; ^&lt;/span&gt;&lt;/p&gt;

&lt;p class=153 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:5.25pt;
margin-left:132.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
5.3pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=1595pt0&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=152&gt;&lt;span
lang=EN-US&gt;=1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:96.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:6.25pt;mso-line-height-rule:exactly;
tab-stops:right 401.85pt;background:transparent&#39;&gt;&lt;span class=1pt7&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;=&lt;/span&gt;&lt;span lang=EN-US&gt;lim&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; E[Rt &lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;| &lt;/span&gt;&lt;span
lang=EN-US&gt;Ao&lt;/span&gt;&lt;span class=MingLiUfff3&gt;&lt;span style=&#39;font-size:11.5pt;
mso-ansi-language:EN-US&#39;&gt;\A3\BA&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t-i &lt;/span&gt;&lt;span
class=MingLiUfff3&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;n] ,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;span
class=9ptb&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9ptb&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.4pt;
margin-left:96.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:6.25pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;t^^&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.0pt;
margin-left:96.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;=E &lt;/span&gt;&lt;span class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;
mso-ansi-language:ZH-TW&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span class=1pt7&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(s&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;)E&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;sup&gt;n(a|s)&lt;/sup&gt;E p(s&#39;, r|s, a)r,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.75pt;
margin-left:96.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 146.95pt center 192.0pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;s&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;a&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;s&lt;sup&gt;;&lt;/sup&gt;,r&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;tab-stops:
245.05pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;where is the steady-state
distribution under n,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(s)
= limt^^ Pr{St = s|Ao:t &lt;/span&gt;&lt;span class=MingLiUfb&gt;&lt;span style=&#39;font-size:
8.5pt;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;n},&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:19.0pt;margin-bottom:7.55pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;which is assumed to exist and to be independent of So (an ergodicity
assumption). Remember that this is the special distribution under which, if you
select actions according to n, you remain in the same distribution:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:29.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:11.5pt;mso-line-height-rule:exactly;
tab-stops:right 401.85pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;^ &lt;/span&gt;&lt;span
class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(s) [ n(a|s, &lt;span class=affffa&gt;6&lt;/span&gt;)p(s&#39;|s, a)=&lt;/span&gt;&lt;span
class=MingLiUfff3&gt;&lt;span style=&#39;font-size:11.5pt&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(s&#39;).&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(10.7)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.95pt;
margin-left:43.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;sa&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.2pt;mso-line-height-rule:exactly;tab-stops:right 146.95pt 147.0pt left 152.4pt center 206.4pt 230.9pt 260.65pt right 293.3pt 374.9pt 385.7pt 401.85pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;We also define values,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Vn(s)&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;==&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;En[Gt|St&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;= s]&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;and&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;qn(s,a)&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;==&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;En[Gt|St = s, At&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;=&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;a],&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:8.95pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.2pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;with respect to the differential
return:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:29.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
tab-stops:right 401.85pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Gt == Rt+i
-n(n) + Rt&lt;/span&gt;&lt;span class=9ptb&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; -n(n) + Rt+3-n(n) + &lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;\A1\AD&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(&lt;/span&gt;&lt;span
class=9ptb&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;.&lt;/span&gt;&lt;span class=9ptb&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:11.0pt;margin-bottom:16.35pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;With these alternate definitions,
and &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; = 1, the policy gradient theorem as given for the
episodic case (13.5) remains true for the continuing case. A proof is given in
the box on the next page. The forward and backward view equations also remain
the same. Complete pseudocode for the backward view is given in the box below.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
9.25pt;margin-left:16.0pt;text-align:left;line-height:8.0pt;mso-line-height-rule:
exactly;background:black&#39;&gt;&lt;span class=21c&gt;&lt;span lang=EN-US&gt;Actor-Critic with
Eligibility Traces (continuing)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:24.0pt;margin-bottom:
6.0pt;margin-left:16.0pt;text-align:left;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Input: a
differentiable policy parameterization n(a&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;s, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;), &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;a &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;A, s &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;S, &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;d&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;Input: a differentiable state-value parameterization
V(s,&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;), &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;s &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;S, &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w G &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;m&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;Parameters: step sizes a &amp;gt; 0, P &amp;gt; 0, n &amp;gt; 0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:24.0pt;margin-bottom:
0cm;margin-left:16.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=21Batangf1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;e\A1\E3&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;(n-component eligibility trace vector) &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;e&lt;sup&gt;w&lt;/sup&gt; \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batangf2&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;(m-component eligibility trace vector)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:16.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Initialize R &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;R &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;(e.g.,
to 0)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:16.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Initialize policy parameter &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;and state-value weights &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;(e.g., to &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:16.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Initialize S &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;G &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;S
(e.g., to s&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;o&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:16.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Repeat forever:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU7&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;n(&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;-|&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;S, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Take action A,
observe S&lt;sup&gt;;&lt;/sup&gt;, R&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:right 237.6pt;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;8 &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;R &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;R + V(S&lt;sup&gt;;&lt;/sup&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;V(S,&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;)&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;(if &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span class=21MingLiU8&gt;&lt;span
style=&#39;font-size:7.5pt;mso-ansi-language:ZH-TW&#39;&gt;ح&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;is terminal, then {)(S&lt;sup&gt;/&lt;/sup&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;) == 0)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;R &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;R + n8&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:30.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;e&lt;sup&gt;w&lt;/sup&gt; \A1\AA &lt;/span&gt;&lt;span
class=CenturySchoolbookfa&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; e&lt;sup&gt;w&lt;/sup&gt; &lt;/span&gt;&lt;span
class=CenturySchoolbookfa&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;Vw&lt;/span&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;V(S,&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;span
class=CenturySchoolbookfa&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:244.0pt;margin-bottom:
0cm;margin-left:30.0pt;margin-bottom:.0001pt;text-align:left;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=21Batangf1&gt;&lt;span
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&lt;div class=WordSection341&gt;

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black&#39;&gt;&lt;span class=21c&gt;&lt;span lang=EN-US&gt;Proof of the Policy Gradient Theorem
(continuing case)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The proof of
the policy gradient theorem for the continuing case begins sim&amp;shy;ilarly to the
episodic case. Again we leave it implicit in all cases that n is a function of
O and that the gradients are with respect to O. Recall that in the continuing
case J(O) = r(n) (&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span
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class=210&gt;&lt;span lang=EN-US&gt;) and that and denote values with re&amp;shy;spect to the
differential return (10.8). The gradient of the state-value function can be
written as&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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class=21MingLiU&gt;&lt;span lang=ZH-TW style=&#39;font-size:9.0pt&#39;&gt;\A8\8C&lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU&gt;&lt;span style=&#39;font-size:9.0pt&#39;&gt;\B6\FE&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;p(s&lt;/span&gt;&lt;/span&gt;&lt;span class=21MingLiU&gt;&lt;span style=&#39;font-size:9.0pt;
mso-ansi-language:EN-US&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span class=211pt&gt;&lt;span lang=EN-US&gt;r|s,a&lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;)(r&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; -
r(O) + &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:
7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Vn(s&#39;))&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=5d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.85pt;
margin-left:61.0pt;line-height:8.0pt;mso-line-height-rule:exactly;tab-stops:
center 210.75pt;background:transparent&#39;&gt;&lt;!--[if supportFields]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-element:field-begin&#39;&gt;&lt;/span&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;TOC \o &amp;quot;1-5&amp;quot; \h \z &lt;span
style=&#39;mso-element:field-separator&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;span lang=EN-US&gt;&lt;span
class=54&gt;a&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;s,,r&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=5d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.0pt;
margin-left:51.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=54&gt;&lt;span lang=EN-US&gt;=^ Vn(a|s)qn(s, a) + n(a|s) [-Vr(&lt;/span&gt;&lt;/span&gt;&lt;span
class=5Batang3&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;O&lt;/span&gt;&lt;/span&gt;&lt;span
class=54&gt;&lt;span lang=EN-US&gt;) + ^&lt;/span&gt;&lt;/span&gt;&lt;span class=5Batang2&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=54&gt;&lt;span
lang=EN-US&gt;p(s&#39;|s, a)Vvn(s&#39;)]&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=5d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:11.9pt;
margin-left:61.0pt;line-height:8.0pt;mso-line-height-rule:exactly;tab-stops:
center 253.5pt;background:transparent&#39;&gt;&lt;span class=54&gt;&lt;span lang=EN-US&gt;a&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;s&lt;sup&gt;7&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=5d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.6pt;
margin-left:1.0pt;line-height:8.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=54&gt;&lt;span lang=EN-US&gt;After re-arranging terms, we
obtain&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=5d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.0pt;
margin-left:1.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
mso-list:l90 level1 lfo70;tab-stops:right 280.35pt left 10.1pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;![endif]&gt;&lt;span class=54&gt;&lt;span lang=EN-US&gt;r(&lt;/span&gt;&lt;/span&gt;&lt;span
class=5Batang3&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;O&lt;/span&gt;&lt;/span&gt;&lt;span
class=54&gt;&lt;span lang=EN-US&gt;) =&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Vn(a|s)qn(s,
a)+n(a|s&lt;/span&gt;&lt;/span&gt;&lt;span class=5Batang3&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;^ ^ &lt;/span&gt;&lt;/span&gt;&lt;span class=5Batang2&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=54&gt;&lt;span lang=EN-US&gt;p(s&lt;/span&gt;&lt;/span&gt;&lt;span
class=5Batang3&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&#39;&lt;/span&gt;&lt;/span&gt;&lt;span
class=54&gt;&lt;span lang=EN-US&gt;|s, a)Vv^(s&lt;/span&gt;&lt;/span&gt;&lt;span class=5Batang3&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&#39;&lt;/span&gt;&lt;/span&gt;&lt;span class=54&gt;&lt;span
lang=EN-US&gt;) -Vv^(s), Vs G S.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=11a style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.05pt;
margin-left:51.0pt;line-height:8.0pt;mso-line-height-rule:exactly;tab-stops:
right 186.35pt;background:transparent&#39;&gt;&lt;span class=116&gt;&lt;span lang=EN-US
style=&#39;font-style:normal&#39;&gt;a&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;s&lt;sup&gt;!&lt;/sup&gt;&lt;/span&gt;&lt;!--[if supportFields]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-element:field-end&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]--&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:30.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Notice that
the left-hand side can be written VJ(&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;O&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;) and that it does not depend on s. Thus the right-hand side does
not depend on s either, and we can safely sum it over all s G S, weighted by &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;quot;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU&gt;&lt;span style=&#39;font-size:9.0pt&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;(s), without changing it&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:14.25pt;
margin-left:1.0pt;line-height:8.0pt;mso-line-height-rule:exactly;tab-stops:
right 145.25pt;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;(because
Es&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(s)
= &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;). Thus&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:2.85pt;
margin-left:1.0pt;text-indent:0cm;line-height:9.0pt;mso-line-height-rule:exactly;
mso-list:l90 level1 lfo70;tab-stops:right 90.05pt left 10.35pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;![endif]&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;J(O) = L&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;(s) E Vn(a|s)qn(s, a) + &lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU&gt;&lt;span style=&#39;font-size:9.0pt&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;(a|s) &lt;/span&gt;&lt;/span&gt;&lt;span class=21MingLiU&gt;&lt;span style=&#39;font-size:
9.0pt&#39;&gt;\B6\FE&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;P(s&#39;|s, a)Vvn(s&#39;) - Vvn(s:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.5pt;
margin-left:51.0pt;line-height:8.0pt;mso-line-height-rule:exactly;tab-stops:
center 97.55pt 234.1pt;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;s&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;a&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;s&lt;sup&gt;!&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
1.6pt;margin-left:78.0pt;text-align:left;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;(s)Yl&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; Vn(a|s)qn (s, a)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.25pt;
margin-left:51.0pt;line-height:8.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;sa&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.1pt;
margin-left:61.0pt;line-height:9.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU&gt;&lt;span style=&#39;font-size:9.0pt&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span class=211pt&gt;&lt;span
lang=EN-US&gt;(s)[&lt;/span&gt;&lt;/span&gt;&lt;span class=21MingLiU&gt;&lt;span style=&#39;font-size:9.0pt&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;(a|s) [ &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;P(s&#39;|s, a)Vvn(s&#39;)-&lt;/span&gt;&lt;/span&gt;&lt;span class=21MingLiU&gt;&lt;span
style=&#39;font-size:9.0pt&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;(s) [
Vv^(s)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.5pt;
margin-left:101.0pt;line-height:8.0pt;mso-line-height-rule:exactly;tab-stops:
right 155.5pt left 290.35pt;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;a&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;s&lt;sup&gt;7&lt;/sup&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;a&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
1.6pt;margin-left:78.0pt;text-align:left;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;(s)Yl&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; Vn(a|s)qn (s, a)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.5pt;
margin-left:51.0pt;line-height:8.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;sa&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:14.85pt;
margin-left:61.0pt;line-height:9.0pt;mso-line-height-rule:exactly;tab-stops:
102.75pt;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;+&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU8&gt;&lt;span style=&#39;font-size:7.5pt;mso-ansi-language:ZH-TW&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(s)&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;I]
n(a|s)p(s&#39;|s, a) Vv^(s&#39;) - ^ &lt;/span&gt;&lt;/span&gt;&lt;span class=21MingLiU&gt;&lt;span
style=&#39;font-size:9.0pt&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;(s)Vv^(s)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:8.2pt;
margin-left:127.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Mn &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;span
class=CenturySchoolbookfa&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;s&lt;sup&gt;7&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) (i0.7)&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:14.5pt;
margin-left:51.0pt;line-height:9.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;a name=bookmark225&gt;&lt;span class=211pt&gt;&lt;span lang=EN-US&gt;[&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark225&#39;&gt;&lt;span class=211pt&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;span lang=EN-US&gt;(s)&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; [ Vn(a|s)qn(s, a) + [&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:
bookmark225&#39;&gt;&lt;span class=21MingLiU&gt;&lt;span style=&#39;font-size:9.0pt&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span
class=211pt&gt;&lt;span lang=EN-US&gt;(s&#39;)Vv^(s&#39;)-[&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark225&#39;&gt;&lt;span class=21MingLiU&gt;&lt;span style=&#39;font-size:
9.0pt&#39;&gt;\C8\E7&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;(s)Vv^(s)&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
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  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
    0cm;margin-left:5.0pt;margin-bottom:.0001pt;text-align:left;line-height:
    7.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=210ptExact2&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;Q.E.D.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=21MingLiU&gt;&lt;span style=&#39;font-size:9.0pt&#39;&gt;آ&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;(s) L Vn(a|s)qn(s,a).&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br
clear=all style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l94 level1 lfo63;tab-stops:42.75pt;background:transparent&#39;&gt;&lt;a
name=bookmark226&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;13.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Policy Parameterization for
Continuous Actions&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Policy-based
methods offer practical ways of dealing with large actions spaces, even
continuous spaces with an infinite number of actions. Instead of computing
learned probabilities for each of the many actions, we instead compute learned
the statistics of the probability distribution. For example, the action set
might be the real numbers, with actions chosen from a normal (Gaussian)
distribution.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:27.2pt;
margin-left:1.0pt;line-height:8.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The conventional probability
density function for the normal distribution is written&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.35pt;
margin-left:30.0pt;line-height:9.0pt;mso-line-height-rule:exactly;tab-stops:
182.4pt right 398.55pt;background:transparent&#39;&gt;&lt;span class=21MingLiU&gt;&lt;span
style=&#39;font-size:9.0pt&#39;&gt;\BF\A7&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;exp&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;(&lt;sup&gt;-&lt;/sup&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;,&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(13&lt;/sup&gt;.&lt;sup&gt;13)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;where ^ and &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;
here are the mean and standard deviation of the normal distribution, and of
course n here is just the number n &lt;/span&gt;&lt;/span&gt;&lt;span class=21MingLiU8&gt;&lt;span
style=&#39;font-size:7.5pt;mso-ansi-language:ZH-TW&#39;&gt;\B0\D1&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;3.14159. The
probability density function for several different means and standard
deviations is shown in Figure 13.1. The value p(x) is the &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;density&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; of the probability at x, not the probability. It can be greater
than 1; it is the total area under p(x) that must sum to 1. In general, one can
take the integral under p(x) for any range of x values to get the probability
of x falling within that range.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:16.45pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;To produce a policy
parameterization, we can define the policy as the normal prob&amp;shy;ability density
over a real-valued scalar action, with mean and standard deviation give by
parametric function approximators. That is, we define&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:30.0pt;margin-bottom:.0001pt;line-height:7.9pt;mso-line-height-rule:
exactly;tab-stops:right 398.55pt;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;n(a|s, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=211pt&gt;&lt;span lang=EN-US&gt;)==\A1\AA\A1\AAexpf-&lt;/span&gt;&lt;/span&gt;&lt;span
class=211pt2&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;(a&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt; -&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21MingLiU9&gt;&lt;span style=&#39;font-size:
9.0pt&#39;&gt;\C7ɡ\A2&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf3&gt;&lt;sup&gt;&lt;span lang=ZH-TW
style=&#39;font-size:9.5pt;mso-ansi-language:ZH-TW&#39;&gt;6&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=21f&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span
lang=EN-US&gt;^ .&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(13.14)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.6pt;
margin-left:30.0pt;text-indent:0cm;line-height:7.9pt;mso-line-height-rule:exactly;
mso-list:l90 level1 lfo70;tab-stops:42.75pt right 61.7pt 98.4pt 161.75pt 222.25pt 365.05pt 398.55pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;![endif]&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;&#39;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU&gt;&lt;sup&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:EN-US&#39;&gt;\A3\BB&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;a(s,
&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;^&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;V&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;a(s, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;)&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf2&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
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&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
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exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;To complete
the example we need only give a form for the approximators for the mean and
standard-deviation functions. For this we divide the policy\A1\AFs parameter vector
into two parts, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;6 &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;= [&lt;/span&gt;&lt;/span&gt;&lt;span
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class=210&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;M&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span
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class=210&gt;&lt;span lang=EN-US&gt;]&lt;sup&gt;T&lt;/sup&gt;, one part to be used for the
approximation of the mean and one part for the approximation of the standard
deviation. The mean&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

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     tab-stops:21.35pt 42.95pt right 71.75pt 93.35pt;background:transparent&#39;&gt;&lt;span
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     style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;-3&lt;span
     style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;-2&lt;span
     style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;-1&lt;/span&gt;&lt;/p&gt;
     &lt;/div&gt;
     &lt;![if !mso]&gt;&lt;/td&gt;
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   &lt;![endif]&gt;&lt;/v:textbox&gt;
  &lt;w:wrap anchorx=&#34;margin&#34;/&gt;
 &lt;/v:shape&gt;&lt;/o:wrapblock&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:34.65pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection345&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.7pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;can be approximated as a linear function. The standard deviation
must always be positive and is better approximated as the exponential of a
linear function. Thus&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.75pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 398.85pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;^(s, w) == &lt;/span&gt;&lt;span class=9ptb&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&amp;quot;&lt;sup&gt;T&lt;/sup&gt;x(s)
and a(s, &lt;/span&gt;&lt;span class=9ptb&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) == exp(&lt;/span&gt;&lt;span class=ArialUnicodeMSff6&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=affffb&gt;&lt;span lang=EN-US&gt;\A1\E3&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;x(s)) ,&lt;span style=&#39;mso-tab-count:
1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(13.15)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where x(s) is a state feature vector constructed perhaps by one of
the methods described in Chapter 9. With these definitions, all the algorithms
described in the rest of this chapter can be applied to learn to select
real-valued actions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exercise 13.3 A &lt;/span&gt;&lt;span
class=ArialUnicodeMSff6&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;Bernoulli-logistic
unit&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;is a stochastic neuron-like unit used in some artificial neural
networks (see Section 9.6). Its input at time t is a fea&amp;shy;ture vector x(St); its
output, At, is a random variable having two values, &lt;/span&gt;&lt;span class=9ptb&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; and &lt;/span&gt;&lt;span
class=9ptb&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, with Pr{At = 1} = Pt and Pr{At = 0} = &lt;/span&gt;&lt;span class=9ptb&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; - Pt (the
Bernoulli distribution). Let h(s, 0, &lt;/span&gt;&lt;span class=9ptb&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) and h(s, 1, &lt;/span&gt;&lt;span
class=9ptb&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) be the preferences in state s for for the unit\A1\AFs two ac&amp;shy;tions
given policy parameter &lt;/span&gt;&lt;span class=9ptb&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. Assume that the difference
between the prefer&amp;shy;ences is given by a weighted sum of the unit\A1\AFs input vector,
that is, assume that h(s, &lt;/span&gt;&lt;span class=9ptb&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;span
class=9ptb&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) - h(s, &lt;/span&gt;&lt;span class=9ptb&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;span class=9ptb&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) = &lt;/span&gt;&lt;span
class=9ptb&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;x(s), where &lt;/span&gt;&lt;span
class=ArialUnicodeMSff6&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;is the unit\A1\AFs weight vector.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l73 level1 lfo71;
tab-stops:18.0pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;(a)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Show that if the exponential
softmax distribution (13.2) is used to convert pref&amp;shy;erences to policies, then
Pt = n(1|St, &lt;/span&gt;&lt;span class=9ptb&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t) = &lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1/(1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; + exp(-&lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;x(St)))
(the logistic function).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l73 level1 lfo71;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;(b)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;What is the Monte-Carlo REINFORCE update
of &lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t to &lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+i upon receipt of return Gt?&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l73 level1 lfo71;
tab-stops:right 398.85pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;(c)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-spacerun:yes&#39;&gt;&amp;nbsp;&lt;/span&gt;Express the eligibility Ve logn(a|s, &lt;/span&gt;&lt;span
class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) for a Bernoulli-logistic unit, in terms of a, x(s), and n(a|s, &lt;/span&gt;&lt;span
class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) by calculating the gradient. Hint: separately for each action
compute the derivative of the log first with respect to &lt;/span&gt;&lt;span
class=ArialUnicodeMSff6&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;= n(&lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;|s, &lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;), combine the two results into one expression that depends on a and
p, and then use the chain rule, noting that the derivative of the logistic
function &lt;/span&gt;&lt;span class=ArialUnicodeMSff6&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;f&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(x) is &lt;/span&gt;&lt;span
class=ArialUnicodeMSff6&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;f&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(x&lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;)(1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; - &lt;/span&gt;&lt;span class=ArialUnicodeMSff6&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;f&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt0&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(x)).&lt;span
style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;\A1\F5&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l94 level1 lfo63;tab-stops:44.65pt;background:transparent&#39;&gt;&lt;a
name=bookmark227&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;13.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Summary&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Prior to this chapter, this book has
focused on &lt;/span&gt;&lt;span class=ArialUnicodeMSff6&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;action-value methods&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;\A1\AAmeaning
meth&amp;shy;ods that learn action values and then use them to determine action
selections. In this chapter, on the other hand, we have considered methods that
learn a parameterized policy that enables actions to be taken without
consulting action-value estimates\A1\AA though action-value estimates may still be
learned and used to update the policy pa&amp;shy;rameter. In particular, we have
considered &lt;/span&gt;&lt;span class=ArialUnicodeMSff6&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;policy-gradient methods&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;\A1\AAmeaning
meth&amp;shy;ods that update the policy parameter on each step in the direction of an
estimate of performance with respect to the policy parameter.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Methods that learn and store a
policy parameter have many advantages. They can learn specific probabilities
for their actions. They can learn appropriate levels of exploration and
approach determinism asymptotically. They can naturally handle continuous state
spaces. All these things are easy for policy-based methods, but awkward or
impossible for e-greedy methods and for action-value methods in general. In
addition, on some problems the policy is just simpler to represent
parametrically than the value function; these are more suited to parameterized
policy methods.&lt;br clear=all style=&#39;mso-special-character:line-break;
page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Parameterized policy methods also have an important theoretical
advantage over action-value methods in the form of the &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;policy
gradient theorem&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;, which gives an
exact formula for how performance is affected by the policy parameter that does
not involve derivatives of the state distribution. This theorem provides a
theoretical foundation for all policy gradient methods.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;REINFORCE&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;method follows directly from the policy gradient theorem. Adding a
state-value function as a &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;baseline&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;reduces REINFORCE\A1\AFs variance without introducing bias. Using the
state-value function for bootstrapping results introduces bias, but is often
desirable for the same reason that bootstrapping TD methods are often superior
to Monte Carlo methods (substantially reduced variance). The state-value
function assigns credit to\A1\AAcritizes\A1\AAthe policy\A1\AFs action selections, and
accordingly the former is termed the &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;critic&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;and the latter the &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;actor&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;, and these overall methods are sometimes termed &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;actor-critic&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;methods.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:18.35pt;
margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Overall, policy-gradient
methods provide a significantly different set of proclivi&amp;shy;ties, strengths, and
weaknesses than action-value methods. Today they are less well understood, but
a subject of excitement and ongoing research.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:37.0pt;text-indent:-36.0pt;line-height:13.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a name=bookmark228&gt;&lt;span lang=EN-US&gt;Bibliographical
and Historical Remarks&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Methods that
we now see as related to policy gradients were actually some of the earli&amp;shy;est
to be studied in reinforcement learning (Witten, 1977; Barto, Sutton, and Ander&amp;shy;son,
1983; Sutton, 1984; Williams, 1987, 1992) and in predecessor fields (Phansalkar
and Thathachar, 1995). They were largely supplanted in the 1990s by the action-
value methods that are the focus of the other chapters of this book. In recent
years, however, extensive attention has returned to actor-critic methods and to
policy- gradient methods in general. Among the further developments beyond what
we cover here are natural-gradient methods (Amari, 1998; Kakade, 2002, Peters,
Vi- jayakumar and Schaal, 2005; Peters and Schall, 2008; Park, Kim and Kang,
2005; Bhatnagar, Sutton, Ghavamzadeh and Lee, 2009; see Grondman, Busoniu,
Lopes and Babuska, 2012), and deterministic policy gradient (Silver et al.,
2014). Major applications include acrobatic helicopter autopilots and AlphaGo
(see Section 16.7).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:15.15pt;
margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Our
presentation in this chapter is based primarily on that by Sutton, McAllester,
Singh, and Mansour (2000), who introduced the term \A1\B0policy gradient methods\A1\B1. A
useful overview is provided by Bhatnagar et al. (2003). One of the earliest
related works is by Aleksandrov, Sysoyev, and Shemeneva (1968).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.05pt;
margin-left:37.0pt;text-indent:-36.0pt;line-height:9.5pt;mso-line-height-rule:
exactly;mso-list:l85 level1 lfo72;tab-stops:36.4pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;13.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Example 13.1
was implemented by Eric Graves.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:16.35pt;
margin-left:37.0pt;text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l85 level1 lfo72;tab-stops:36.4pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;13.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The policy
gradient theorem was first obtained by Marbach and Tsitsiklis (1998, 2001) and
then independently by Sutton et al. (2000). A similar expression was obtained
by Cao and Chen (1997). Other early results are due to Konda and Tsitsiklis
(2000, 2003) and Baxter and Bartlett (2000).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.6pt;
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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=942 align=left style=&#39;margin:0cm;margin-bottom:.0001pt;text-align:
    left;line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
    class=940ptExact&gt;&lt;span lang=EN-US&gt;13.3&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;REINFORCE is due to Williams (1987,
1992). The use of a power of the &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection346&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.6pt;
margin-left:37.0pt;text-indent:-36.0pt;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;discount
factor in the update is due to Thomas (2014).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.2pt;
margin-left:36.0pt;line-height:13.7pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Phansalkar and Thathachar (1995)
proved both local and global convergence theorems for modified versions of
REINFORCE algorithms.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-indent:-35.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l60 level1 lfo73;tab-stops:35.1pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;13.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The baseline
was introduced in Williams\A1\AFs (1987, 1992) original work. Green- smith,
Bartlett, and Baxter (2004) analyzed an arguable better baseline (see Dick,
2015).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-indent:-35.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l60 level1 lfo73;tab-stops:35.1pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;13.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Actor-critic
methods were among the earliest to be investigated in reinforce&amp;shy;ment learning
(Witten, 1977; Barto, Sutton, and Anderson, 1983; Sutton, 1984). The algorithms
presented here and in Section 13.6 are based on the work of Degris, White, and
Sutton (2012), who also introduced the study of off-policy policy-gradient
methods.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;text-indent:-35.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;tab-stops:35.1pt;background:transparent&#39;&gt;&lt;span
class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;13.7&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;The first to show how continuous actions could be
handled this way appears&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;to have been
Williams (1987, 1992).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection347&gt;

&lt;p class=922 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:62.15pt;
margin-left:3.0pt;line-height:19.0pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark229&gt;&lt;span lang=EN-US&gt;Part III: Looking Deeper&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:3.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;In this last
part of the book we look beyond the standard reinforcement learning ideas
presented in the first two parts of the book to briefly survey their
relationships with psychology and neuroscience, a sampling of reinforcement
learning applications, and some of the active frontiers for future
reinforcement learning research.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection348&gt;

&lt;p class=8a style=&#39;margin-bottom:28.9pt;line-height:19.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=84&gt;&lt;span lang=EN-US&gt;Chapter 14&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=833 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:37.75pt;
margin-left:0cm;line-height:22.0pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark230&gt;&lt;span lang=EN-US&gt;Psychology&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;In previous
chapters we developed ideas for algorithms based on computational con&amp;shy;siderations
alone. In this chapter we look at some of these algorithms from another
perspective: the perspective of psychology and its study of how animals learn.
The goals of this chapter are, first, to discuss ways that reinforcement
learning ideas and algorithms correspond to what psychologists have discovered
about animal learning, and second, to explain the influence reinforcement
learning is having on the study of animal learning. The clear formalism
provided by reinforcement learning that sys- temizes tasks, returns, and
algorithms is proving to be enormously useful in making sense of experimental
data, in suggesting new kinds of experiments, and in pointing to factors that
may be critical to manipulate and to measure. The idea of optimizing return
over the long term that is at the core of reinforcement learning is
contributing to our understanding of otherwise puzzling features of animal
learning and behavior.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Some of the correspondences between reinforcement learning and
psychological theories are not surprising because the development of
reinforcement learning drew inspiration from psychological learning theories.
However, as developed in this book, reinforcement learning explores idealized situations
from the perspective of an ar&amp;shy;tificial intelligence researcher or engineer,
with the goal of solving computational problems with efficient algorithms,
rather than to to replicate or explain in detail how animals learn. As a
result, some of the correspondences we describe connect ideas that arose
independently in their respective fields. We believe these points of contact
are specially meaningful because they expose computational principles important
to learning, whether it is learning by artificial or by natural systems.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;For the most part, we describe correspondences between reinforcement
learning and learning theories developed to explain how animals like rats,
pigeons, and rab&amp;shy;bits learn in controlled laboratory experiments. Thousands of
these experiments were conducted throughout the &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;20&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;th century, and many are still being conducted to&amp;shy;day.
Although sometimes dismissed as irrelevant to wider issues in psychology, these
experiments probe subtle properties of animal learning, often motivated by
precise theoretical questions. As psychology shifted its focus to more
cognitive aspects of behavior, that is, to mental processes such as thought and
reasoning, animal learning experiments came to play less of a role in
psychology than they once did. But this experimentation led to the discovery of
learning principles that are elemental and widespread throughout the animal
kingdom, principles that should not be neglected in designing artificial
learning systems. In addition, as we shall see, some aspects of cognitive
processing connect naturally to the computational perspective provided by
reinforcement learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:30.35pt;
margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;This chapter\A1\AFs
final section includes references relevant to the connections we dis&amp;shy;cuss as
well as to connections we neglect. We hope this chapter encourages readers to
probe all of these connections more deeply. Also included in this final section
is a discussion of how the terminology used in reinforcement learning relates
to that of psychology. Many of the terms and phrases used in reinforcement learning
are bor&amp;shy;rowed from animal learning theories, but the computational/engineering
meanings of these terms and phrases do not always coincide with their meanings
in psychology.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l95 level1 lfo74;tab-stops:45.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark231&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;14.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Prediction and Control&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The algorithms
we describe in this book fall into two broad categories: algorithms for &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;prediction&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;and algorithms for &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;control&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;. These categories arise naturally in solution
methods for the reinforcement learning problem presented in Chapter 3. In many
ways these categories respectively correspond to categories of learning
extensively studied by psychologists: &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;classical,&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;or &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;Pavlovian, conditioning&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;instrumental,&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;or &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;operant&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;conditioning&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;. These correspondences are not completely accidental because of
psychology\A1\AFs influence on reinforcement learning, but they are nevertheless
striking because they connect ideas arising from different objectives.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The prediction algorithms presented in this book estimate quantities
that depend on how features of an agent\A1\AFs environment are expected to unfold
over the future. We specifically focus on estimating the amount of reward an
agent can expect to receive over the future while it interacts with its
environment. In this role, prediction algo&amp;shy;rithms are &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;policy
evaluation algorithms&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;, which are
integral components of algorithms for improving policies. But prediction
algorithms are not limited to predicting future reward; they can predict any
feature of the environment (see, for example, Modayil, White, and Sutton,
2014). The correspondence between prediction algorithms and classical
conditioning rests on their common property of predicting upcoming stimuli,
whether or not those stimuli are rewarding (or punishing).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The situation
in an instrumental, or operant, conditioning experiment is different. Here, the
experimental apparatus is set up so that an animal is given something it likes
(a reward) or something it dislikes (a penalty) depending on what the animal
did. The animal learns to increase its tendency to produce rewarded behavior
and to decrease its tendency to produce penalized behavior. The reinforcing
stimulus is said to be &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;contingent&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;on the animal\A1\AFs behavior, whereas in classical
conditioning it is not (although it is difficult to remove all behavior
contingencies in a classical conditioning experiment). Instrumental
conditioning experiments are like those that inspired Thorndike\A1\AFs Law of Effect
that we briefly discuss in Chapter 1. &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;Control&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;is at the core of this form of learning, which
corresponds to the operation of reinforcement learning\A1\AFs policy-improvement
algorithms&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;.&lt;a style=&#39;mso-footnote-id:ftn25&#39; href=&#34;#_ftn25&#34;
name=&#34;_ftnref25&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=21Batang0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[25]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Thinking of classical conditioning in terms of prediction, and
instrumental condi&amp;shy;tioning in terms of control, is a starting point for connecting
our computational view of reinforcement learning to animal learning, but in
reality, the situation is more complicated than this. There is more to
classical conditioning than prediction; it also involves action, and so is a
mode of control, sometimes called &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span
lang=EN-US&gt;Pavlovian con&amp;shy;trol&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;.
Further, classical and instrumental conditioning interact in interesting ways,
with both sorts of learning likely being engaged in most experimental
situations. Despite these complications, aligning the classical/instrumental distinction
with the prediction/control distinction is a convenient first approximation in
connecting rein&amp;shy;forcement learning to animal learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.35pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;In psychology,
the term reinforcement is used to describe learning in both classical and
instrumental conditioning. Originally referring only to the strengthening a pat&amp;shy;tern
of behavior, it is frequently also used for the weakening of a pattern of
behavior. A stimulus considered to be the cause of the change in behavior is
called a reinforcer, wether or not it is contingent on the animal\A1\AFs previous
behavior. At the end of this chapter we discuss this terminology in more detail
and how it relates to terminology used in machine learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l95 level1 lfo74;tab-stops:44.65pt;background:transparent&#39;&gt;&lt;a
name=bookmark232&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;14.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Classical Conditioning&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;While studying the activity of
the digestive system, the celebrated Russian physiolo&amp;shy;gist Ivan Pavlov found
that an animal\A1\AFs innate responses to certain triggering stimuli can come to be
triggered by other stimuli that are quite unrelated to the inborn triggers. His
experimental subjects were dogs that had undergone minor surgery to allow the
intensity of their salivary reflex to be accurately measured. In one case he
describes, the dog did not salivate under most circumstances, but about 5
seconds after being presented with food it produced about six drops of saliva
over the next several seconds. After several repetitions of presenting another
stimulus, one not re&amp;shy;lated to food, in this case the sound of a metronome,
shortly before the introduction of food, the dog salivated in response to the
sound of the metronome in the same way it did to the food. \A1\B0The activity of the
salivary gland has thus been called into play by impulses of sound\A1\AAa stimulus
quite alien to food\A1\B1 (Pavlov, 1927, p. 22). Summarizing the significance of
this finding, Pavlov wrote:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:28.0pt;margin-bottom:0cm;
margin-left:28.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;It is pretty
evident that under natural conditions the normal animal must respond not only
to stimuli which themselves bring immediate benefit or harm, but also to other
physical or chemical agencies\A1\AAwaves of sound, light, and the like\A1\AAwhich in
themselves only &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;signal&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; the approach of these stimuli; though it is not the
sight and sound of the beast of prey which is&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection349&gt;

&lt;p class=1001 style=&#39;margin-top:0cm;margin-right:20.0pt;margin-bottom:12.25pt;
margin-left:0cm;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Delay Conditioning CS&lt;/span&gt;&lt;/p&gt;

&lt;p class=1001 style=&#39;margin-top:0cm;margin-right:20.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:9.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;US&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection350&gt;

&lt;p class=MsoNormal style=&#39;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;margin-top:.2pt;margin-right:0cm;margin-bottom:.2pt;
margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection351&gt;

&lt;p class=1001 align=left style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;
text-align:left;line-height:9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;ISI&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection352&gt;

&lt;p class=MsoNormal style=&#39;line-height:9.45pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection353&gt;

&lt;p class=1001 style=&#39;margin-top:0cm;margin-right:16.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:16.55pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Trace Conditioning CS&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection354&gt;

&lt;p class=MsoNormal style=&#39;margin-top:2.3pt;margin-right:0cm;margin-bottom:2.3pt;
margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection355&gt;

&lt;p class=1001 align=left style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;
text-align:left;line-height:9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;US&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection356&gt;

&lt;p class=MsoNormal style=&#39;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;margin-top:2.3pt;margin-right:0cm;margin-bottom:2.3pt;
margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection357&gt;

&lt;p class=208 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:17.45pt;
margin-left:319.0pt;line-height:8.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=201&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:34.85pt;
margin-left:1.0pt;line-height:11.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Figure 14.1: Arrangement of
stimuli in two types of classical conditioning experiments. In delay
conditioning, the CS extends throughout the interstimulus interval, or ISI,
which is the time interval between the CS onset and the US onset (often with
the CS and US ending at the same time as shown here). In trace conditioning,
there is a time interval, called the trace interval, between CS offset and US
onset.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:28.0pt;margin-bottom:
14.8pt;margin-left:28.0pt;text-align:left;line-height:13.2pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;in itself
harmful to the smaller animal, but its teeth and claws. (Pavlov, 1927, p. 14)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
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  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
    margin-left:6.0pt;margin-bottom:.0001pt;line-height:13.7pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=210ptExact2&gt;&lt;span lang=EN-US
    style=&#39;font-size:7.5pt&#39;&gt;Connecting new stimuli to innate Pavlovian,
    conditioning. Pavlov (or&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
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  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;reflexes in this way is now called
classical, or more exactly, his translators) called inborn re&amp;shy;sponses (e.g.,
salivation in his demonstration described above) \A1\B0unconditioned re&amp;shy;sponses\A1\B1
(URs), their natural triggering stimuli (e.g., food) \A1\B0unconditioned stimuli\A1\B1
(USs), and new responses triggered by predictive stimuli (e.g., here also
salivation) \A1\B0conditioned responses\A1\B1 (CRs). A stimulus that is initially
neutral, meaning that it does not normally elicit strong responses (e.g., the
metronome sound), becomes a \A1\B0conditioned stimulus\A1\B1 (CS) as the animal learns
that it predicts the US and so comes to produce a CR in response to the CS.
These terms are still used in describ&amp;shy;ing classical conditioning experiments
(though better translations would have been \A1\B0conditional\A1\B1 and \A1\B0unconditional\A1\B1
instead of conditioned and unconditioned). The US is called a reinforcer
because it reinforces producing a CR in response to the CS.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Figure 14.1 shows the arrangement of stimuli in two types of
classical conditioning experiments: in delay conditioning, the CS extends
throughout the interstimulus interval, or ISI, which is the time interval
between the CS onset and the US onset (with the CS ending when the US ends in a
common version shown here). In trace conditioning, the US begins after the CS
ends, and the time interval between CS offset and US onset is called the trace
interval.&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:17.35pt;
margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The salivation
of Pavlov\A1\AFs dogs to the sound of a metronome is just one example of classical
conditioning, which has been intensively studied across many response systems
of many species of animals. URs are often preparatory in some way, like the
salivation of Pavlov\A1\AFs dog, or protective in some way, like an eye blink in
response to something irritating to the eye, or freezing in response to seeing
a predator. Ex&amp;shy;periencing the CS-US predictive relationship over a series of
trials causes the animal to learn that the CS predicts the US so that the
animal can respond to the CS with a CR that prepares the animal for, or
protects it from, the predicted US. Some CRs are similar to the UR but begin
earlier and differ in ways that increase their effectiveness. In one
intensively studied type of experiment, for example, a tone CS reliably
predicts a puff of air (the US) to a rabbit\A1\AFs eye, triggering a UR consisting
of the closure of a protective inner eyelid called the nictitating membrane.
After one or more trials, the tone comes to trigger a CR consisting of membrane
closure that begins before the air puff and eventually becomes timed so that
peak closure occurs just when the air puff is likely to occur. This CR, being
initiated in anticipation of the air puff and appropriately timed, offers
better protection than simply initiating closure as a reaction to the
irritating US. The ability to act in anticipation of impor&amp;shy;tant events by
learning about predictive relationships among stimuli is so beneficial that it
is widely present across the animal kingdom.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=691 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.85pt;
margin-left:1.0pt;text-indent:0cm;line-height:10.5pt;mso-line-height-rule:exactly;
mso-list:l40 level1 lfo75;tab-stops:48.05pt;background:transparent&#39;&gt;&lt;a
name=bookmark233&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;
font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:Batang;font-weight:normal&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;14.2.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=690&gt;&lt;span lang=EN-US&gt;Blocking and
Higher-order Conditioning&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Many
interesting properties of classical conditioning have been observed in exper&amp;shy;iments.
Beyond the anticipatory nature of CRs, two widely observed properties figured
prominently in the development of classical conditioning models: &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;blocking &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;higher-order conditioning.&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;Blocking occurs when an animal fails to learn a CR
when a potential CS in presented along with another CS that had been used previ&amp;shy;ously
to condition the animal to produce that CR. For example, in the first stage of
a blocking experiment involving rabbit nictitating membrane conditioning, a
rabbit is first conditioned with a tone CS and an air puff US to produce the CR
of closing its nictitating membrane in anticipation of the air puff. The
experiment\A1\AFs second stage consists of additional trials in which a second
stimulus, say a light, is added to the tone to form a compound tone/light CS
followed by the same air puff US. In the experiment\A1\AFs third phase, the second
stimulus alone\A1\AAthe light\A1\AAis presented to the rabbit to see if the rabbit has
learned to respond to it with a CR. It turns out that the rabbit produces very
few, or no, CRs in response to the light: learning to the light had been &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;blocked&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;by the previous learning to the tone&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;.&lt;a style=&#39;mso-footnote-id:
ftn26&#39; href=&#34;#_ftn26&#34; name=&#34;_ftnref26&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:
footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=21Batang0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt;mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[26]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; Blocking results like this challenged the idea that
conditioning depends only on simple temporal contigu&amp;shy;ity, that is, that a
necessary and sufficient condition for conditioning is that a US frequently
follows a CS closely in time. In the next section we describe the &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;Rescorla-
Wagner model&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;(Rescorla
and Wagner, 1972) that offered an influential explanation&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
1.55pt;margin-left:0cm;text-align:left;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;for blocking.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Higher-order conditioning occurs when a previously-conditioned CS
acts as a US in conditioning another initially neutral stimulus. Pavlov
described an experiment in which his assistant first conditioned a dog to
salivate to the sound of a metronome that predicted a food US, as described
above. After this stage of conditioning, a number of trials were conducted in
which a black square, to which the dog was initially indifferent, was placed in
the dog\A1\AFs line of vision followed by the sound of the metronome\A1\AAand this was &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;not&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;followed by food. In just ten trials, the dog began
to salivate merely upon seeing the black square, despite the fact that the
sight of it had never been followed by food. The sound of the metronome itself
acted as a US in conditioning a salivation CR to the black square CS. This was
second-order conditioning. If the black square had been used as a US to
establish salivation CRs to another otherwise neutral CS, it would have been
third-order conditioning, and so on. Higher-order conditioning is difficult to
demonstrate, especially above the second order, in part because a higher-order
reinforcer loses its reinforcing value due to not being repeatedly followed by
the original US during higher-order conditioning trials. But under the right
conditions, such as intermixing first-order trials with higher- order trials or
by providing a general energizing stimulus, higher-order conditioning beyond
the second order can be demonstrated. As we describe below, the &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;TD model of
classical conditioning&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;uses
the backup idea that is central to our approach to extend the Rescorla-Wagner
model\A1\AFs account of blocking to include both the anticipatory nature of CRs and
higher-order conditioning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Higher-order instrumental conditioning occurs as well. In this case,
a stimulus that consistently predicts primary reinforcement becomes a
reinforcer itself, where reinforcement is primary if its rewarding or
penalizing quality has been built into the animal by evolution. The predicting
stimulus becomes a &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;secondary reinforcer&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;, or more generally, a &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;higher-order&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;or &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;conditioned reinforcer&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;\A1\AAthe latter being a bet&amp;shy;ter term when the predicted
reinforcing stimulus is itself a secondary, or an even higher-order,
reinforcer. A conditioned reinforcer delivers &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;conditioned
reinforcement&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;: conditioned
reward or conditioned penalty. Conditioned reinforcement acts like pri&amp;shy;mary
reinforcement in increasing an animal\A1\AFs tendency to produce behavior that leads
to conditioned reward, and to decrease an animal\A1\AFs tendency to produce behavior
that leads to conditioned penalty. (See our comments at the end of this chapter
that explain how our terminology sometimes differs, as it does here, from
terminology used in psychology.)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:26.35pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Conditioned
reinforcement is a key phenomenon that explains, for instance, why we work for
the conditioned reinforcer money, whose worth derives solely from what is
predicted by having it. In actor-critic methods described in Section 13.5 (and
discussed in the context of neuroscience in Sections 15.7 and 15.8), the critic
uses a TD method to evaluate the actor\A1\AFs policy, and its value estimates
provide conditioned reinforcement to the actor, allowing the actor to improve
its policy. This analog of higher-order instrumental conditioning helps address
the credit-assignment problem mentioned in Section 1.7 because the critic gives
moment-by-moment reinforcement to the actor when the primary reward signal is
delayed. We discuss this more below in Section 14.4.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=691 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.85pt;
margin-left:0cm;text-indent:0cm;line-height:10.5pt;mso-line-height-rule:exactly;
mso-list:l40 level1 lfo75;tab-stops:47.05pt;background:transparent&#39;&gt;&lt;a
name=bookmark234&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;
font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:Batang;font-weight:normal&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;14.2.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=690&gt;&lt;span lang=EN-US&gt;The
Rescorla\A1\AAWagner Model&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Rescorla and Wagner created their model mainly to account for
blocking. The core idea of the Rescorla-Wagner model is that an animal only
learns when events violate its expectations, in other words, only when the
animal is surprised (although with&amp;shy;out necessarily implying any &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;conscious&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; expectation or emotion). We first present Rescorla and Wagner\A1\AFs
model using their terminology and notation before shifting to the terminology
and notation we use to describe the TD model.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;Here is how Rescorla and Wagner described their
model. The model adjusts the \A1\B0associative strength\A1\B1 of each component stimulus
of a compound CS, which is a number representing how strongly or reliably that
component is predictive of a US. When a compound CS consisting of several
component stimuli is presented in a clas&amp;shy;sical conditioning trial, the
associative strength of each component stimulus changes in a way that depends
on an associative strength associated with the entire stimulus compound, called
the \A1\B0aggregate associative strength,\A1\B1 and not just on the associa&amp;shy;tive strength
of each component itself.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:18.15pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Rescorla and
Wagner considered a compound CS AX, consisting of component stimuli A and X,
where the animal may have already experienced stimulus A, and stimulus X might
be new to the animal. Let &lt;/span&gt;&lt;/span&gt;&lt;span class=21e&gt;&lt;span lang=EN-US&gt;Va,&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; VX, and &lt;/span&gt;&lt;/span&gt;&lt;span class=21e&gt;&lt;span
lang=EN-US&gt;Vax&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; respectively
denote the associative strengths of stimuli A, X, and the compound AX. Suppose
that on a trial the compound CS AX is followed by a US, which we label stimulus
Y. Then the associative strengths of the stimulus components change according
to these ex&amp;shy;pressions:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
0cm;margin-left:28.0pt;margin-bottom:.0001pt;text-align:left;line-height:9.5pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=21e&gt;&lt;span
lang=EN-US&gt;AFa&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; = &lt;sup&gt;a&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;P&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Y &lt;/span&gt;&lt;/span&gt;&lt;span class=21e&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;(r&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;y &lt;sup&gt;- &lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=21f0&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;V&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;ax&lt;sup&gt;)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
10.5pt;margin-left:28.0pt;text-align:left;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=211pt3&gt;&lt;span lang=EN-US&gt;AV&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;X &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;= a&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;P&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;Y &lt;/span&gt;&lt;/span&gt;&lt;span class=21e&gt;&lt;span lang=EN-US&gt;(Ry -
VAx),&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;where a&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;P&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;Y &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;and a&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;P&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;Y &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;are
the step-size parameters, which depend on the identities of the CS components
and the US, and R&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;Y &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;is the
asymptotic level of associative strength that the US Y can support. (Rescorla
and Wagner used A here instead of R, but we use R to avoid confusion with our
use of A and because we usually think of this as the magnitude of a reward
signal, with the caveat that the US in classical conditioning is not
necessarily rewarding or penalizing.) A key assumption of the model is that the
aggregate associative strength &lt;/span&gt;&lt;/span&gt;&lt;span class=21e&gt;&lt;span lang=EN-US&gt;VAx&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; is equal to V&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;+ V&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;X&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;. The
associative strengths as changed by these As become the associative strengths
at the beginning of the next trial.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;To be complete, the model needs a
response-generation mechanism, which is a way of mapping values of &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;s to
CRs. Since this mapping would depend on details of the experimental situation,
Rescorla and Wagner did not specify a mapping but simply assumed that larger Vs
would produce stronger or more likely CRs, and that negative Vs would mean that
there would be no CRs.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:8.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;The Rescorla-Wagner model accounts for the
acquisition of CRs in a way that&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection358&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;explains blocking. As long as the aggregate associative strength, &lt;span
class=aff6&gt;Vax,&lt;/span&gt; of the stim&amp;shy;ulus compound is below the asymptotic level
of associative strength, Ry, that the US Y can support, the prediction error Ry
- VAx is positive. This means that over successive trials the associative
strengths VA and VX of the component stimuli in&amp;shy;crease until the aggregate
associative strength VAx equals Ry, at which point the associative strengths
stop changing (unless the US changes). When a new compo&amp;shy;nent is added to a compound
CS to which the animal has already been conditioned, further conditioning with
the augmented compound produces little or no increase in the associative
strength of the added CS component because the error has already been reduced
to zero, or to a low value. The occurrence of the US is already pre&amp;shy;dicted
nearly perfectly, so little or no error\A1\AAor surprise\A1\AAis introduced by the new CS
component. Prior learning blocks learning to the new component.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;To transition from Rescorla and Wagner\A1\AFs model to the TD model of
classical conditioning (which we just call the TD model), we first recast their
model in terms of the concepts that we are using throughout this book.
Specifically, we match the notation we use for learning with linear function
approximation (Section 9.4), and we think of the conditioning process as one of
learning to predict the \A1\B0magnitude of the US\A1\B1 on a trial on the basis of the
compound CS presented on that trial, where the magnitude of a US Y is the Ry of
the Rescorla-Wagner model as given above. We also introduce states. Because the
Rescorla-Wagner model is a &lt;/span&gt;&lt;span class=ArialUnicodeMSff6&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;trial-level &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;model,
meaning that it deals with how associative strengths change from trial to trial
without considering any details about what happens within and between trials,
we do not have to consider how states change during a trial until we present
the full TD model in the following section. Instead, here we simply think of a
state as a way of labeling a trial in terms of the collection of component CSs
that are present on the trial.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Therefore, assume that trial-type, or state, s is described by a
real-valued vector of features &lt;/span&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(s) =
(xi(s), X&lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=1pt7&gt;&lt;span lang=EN-US&gt;(s),...,&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; x&lt;sub&gt;n&lt;/sub&gt;(s))&lt;sup&gt;T&lt;/sup&gt;
where Xi(s) = &lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; if CSi, the i&lt;sup&gt;th&lt;/sup&gt; component of a compound CS, is present
on the trial and 0 otherwise. Then if the n-dimensional vector of associative
strengths is &lt;/span&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, the aggregate
associative strength for trial-type s is&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:4.75pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
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&#34; filled=&#34;f&#34; stroked=&#34;f&#34;&gt;
 &lt;v:textbox style=&#39;mso-fit-shape-to-text:t&#39; inset=&#34;0,0,0,0&#34;&gt;
  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=afffff6 align=right style=&#39;margin-bottom:7.7pt;text-align:right;
    text-indent:0cm;line-height:9.0pt;mso-line-height-rule:exactly;background:
    transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;
    letter-spacing:0pt&#39;&gt;(14.1)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 align=right style=&#39;margin-bottom:16.35pt;text-align:right;
    text-indent:0cm;line-height:9.0pt;mso-line-height-rule:exactly;background:
    transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;
    letter-spacing:0pt&#39;&gt;in reinforcement learning, and we think of it as&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:
    inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=Exact&gt;&lt;span lang=EN-US
    style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;number of a complete trial and
    not its usual to t\A1\AFs usual meaning when we extend this to that St is the
    state corresponding to trial t.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span lang=EN-US&gt;{)(s,&lt;/span&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) = &lt;/span&gt;&lt;span
class=CenturySchoolbookfa&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;w&lt;sup&gt;T&lt;/sup&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(s).&lt;/span&gt;&lt;/p&gt;

&lt;p class=661 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=66Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;
font-style:normal&#39;&gt;This corresponds to a &lt;/span&gt;&lt;/span&gt;&lt;span class=660&gt;&lt;span
lang=EN-US&gt;value estimate &lt;/span&gt;&lt;/span&gt;&lt;span class=66Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-style:normal&#39;&gt;the &lt;/span&gt;&lt;/span&gt;&lt;span class=660&gt;&lt;span
lang=EN-US&gt;US prediction.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Now temporally let &lt;span class=affffb&gt;t&lt;/span&gt; denote the meaning as
a time step (we revert the TD model below), and assume Conditioning trial t
updates the associative strength vector &lt;/span&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t to &lt;/span&gt;&lt;span
class=CenturySchoolbookfa&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t+i as follows:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.25pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:right 398.8pt;
background:transparent&#39;&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+i = &lt;/span&gt;&lt;span
class=CenturySchoolbookfa&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;t + a5t &lt;/span&gt;&lt;span class=CenturySchoolbookfa&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(St),&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(14.2)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;where a is the step-size parameter,
and\A1\AAbecause here we are describing the Rescorla- Wagner model\A1\AA5t is the &lt;/span&gt;&lt;span
class=ArialUnicodeMSff6&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;prediction
error&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Rt is the
target of the prediction on trial t, that is, the magnitude of the US, or in
Rescorla and Wagner\A1\AFs terms, the associative strength that the US on the trial
can support. Note that because of the factor &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;(St) in (14.2), only the associative strengths of CS
components present on a trial are adjusted as a result of that trial. You can
think of the prediction error as a measure of surprise, and the aggregate
associative strength as the animal\A1\AFs expectation that is violated when it does
not match the target US magnitude.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;From the perspective of machine learning, the Rescorla-Wagner model
is an error- correction supervised learning rule. It is essentially the same as
the Least Mean Square (LMS), or Widrow-Hoff, learning rule (Widrow and Hoff,
1960) that finds the weights\A1\AAhere the associative strengths\A1\AAthat make the
average of the squares of all the errors as close to zero as possible. It is a
\A1\B0curve-fitting,\A1\B1 or regression, algorithm that is widely used in engineering
and scientific applications (see Section 9.4&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;).&lt;a style=&#39;mso-footnote-id:
ftn27&#39; href=&#34;#_ftn27&#34; name=&#34;_ftnref27&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:
footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=21Batang0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt;mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[27]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The Rescorla-Wagner model was very influential in the history of
animal learning theory because it showed that a \A1\B0mechanistic\A1\B1 theory could
account for the main facts about blocking without resorting to more complex
cognitive theories involv&amp;shy;ing, for example, an animal\A1\AFs explicit recognition
that another stimulus component had been added and then scanning its short-term
memory backward to reassess the predictive relationships involving the US. The
Rescorla-Wagner model showed how traditional contiguity theories of
conditioning\A1\AAthat temporal contiguity of stimuli was a necessary and sufficient
condition for learning\A1\AAcould be adjusted in a simple way to account for
blocking (Moore and Schmajuk, 2008).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.15pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The
Rescorla-Wagner model provides a simple account of blocking and some other
features of classical conditioning, but it is not a complete or perfect model
of classical conditioning. Different ideas account for a variety of other
observed effects, and progress is still being made toward understanding the
many subtleties of classical conditioning. The TD model, which we describe
next, though also not a complete or perfect model model of classical
conditioning, extends the Rescorla-Wagner model to address how within-trial and
between-trial timing relationships among stimuli can influence learning and how
higher-order conditioning might arise.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=942 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.25pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;mso-list:l40 level1 lfo75;
tab-stops:47.05pt;background:transparent&#39;&gt;&lt;a name=bookmark235&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;14.2.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=941&gt;&lt;span lang=EN-US&gt;The TD Model&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The TD model
is a &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;real-time&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; model, as opposed to a trial-level model like the
Rescorla-Wagner model. A single step t in the our formulation of Rescorla and
Wagner\A1\AFs model above represents an entire conditioning trial. The model does
not apply to details about what happens during the time a trial is taking
place, or what might happen between trials. Within each trial an animal might
experience various stimuli whose onsets occur at particular times and that have
particular durations. These timing relationships strongly influence learning.
The Rescorla-Wagner model&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection359&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;also does not
include a mechanism for higher-order conditioning, whereas for the TD model,
higher-order conditioning is a natural consequence of the backup idea that is
at the base of TD algorithms.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;To describe the TD model we begin with the formulation of the
Rescorla-Wagner model above, but &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; now labels time
steps within or between trials instead of complete trials. Think of the time
between t and t +1 as a small time interval, say .01 second, and think of a
trial as a sequences of states, one associated with each time step, where the
state at step t now represents details of how stimuli are represented at t
instead of just a label for the CS components present on a trial. In fact, we
can completely abandon the idea of trials. From the point of view of the
animal, a trial is just a fragment of its continuing experience interacting
with its world. Following our usual view of an agent interacting with its
environment, imagine that the animal is experiencing an endless sequence of
states s, each represented by a feature vector &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;(s). That said, it is still often convenient to
refer to trials as fragments of time during which patterns of stimuli repeat in
an experiment.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;State features are not restricted to describing the external stimuli
that an animal experiences; they can describe neural activity patterns that
external stimuli produce in an animal\A1\AFs brain, and these patterns can be
history-dependent, meaning that they can be persistent patterns produced by
sequences of external stimuli. Of course, we do not know exactly what these
neural activity patterns are, but a real-time model like the TD model allows
one to explore the consequences on learning of different hypotheses about the
internal representations of external stimuli. For these reasons, the TD model
does not commit to any particular state representation. In addition, because
the TD model includes discounting and eligibility traces that span time
intervals between stimuli, the model also makes it possible to explore how
discounting and eligibility traces interact with stimulus representations in
making predictions about the results of classical conditioning experiments.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Below we
describe some of the state representations that have been used with the TD
model and some of their implications, but for the moment we stay agnostic about
the representation and just assume that each state s is represented by a
feature vector &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;(s) =
(x&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;(s), X&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf4&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=211pt&gt;&lt;span
lang=EN-US&gt;(s),...,&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; x&lt;sub&gt;n&lt;/sub&gt;(s))&lt;sup&gt;T&lt;/sup&gt;.
Then the aggregate associative strength corresponding to a state s is given by
(14.1), the same as for the Rescorla-Wgner model, but the TD model updates the
associative strength vector, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;, differently. With t now labeling a time step instead of a complete
trial, the TD model governs learning according to this update:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.75pt;
margin-left:28.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
right 398.7pt;background:transparent&#39;&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;t + a&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;t,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(14.4)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;which replaces &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;t (St) in the Rescorla-Wagner update (14.2) with &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;t, a vector of eligibility traces, and instead of
the &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;t of (14.3), here &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;t is a TD error:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.75pt;
margin-left:28.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
right 398.7pt;background:transparent&#39;&gt;&lt;span class=21Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;t = Rt&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;v(St&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;sub&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;+&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;t) -
v(St,&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;t),&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(14.5)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;where &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; is a discount factor (between &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; and &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;), Rt is the prediction target at time t, and v(St&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;t) and v(St,&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;t) are
aggregate associative strengths at t + &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; and t as defined by (14.1).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Each component
&lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; of the eligibility-trace vector &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;t increments or decrements ac&amp;shy;cording to the component x^(St) of the
feature vector &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;(St),
and otherwise decays with a rate determined by &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;A:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:11.6pt;
margin-left:28.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
right 400.25pt;background:transparent&#39;&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batangf5&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;yA&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; e&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;t + &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;(St).&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(14.6)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.55pt;
margin-left:0cm;line-height:8.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;Here A is the usual eligibility trace decay
parameter.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:18.15pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Note that if &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; = 0, the TD model reduces to the Rescorla-Wagner
model with the exceptions that: the meaning of t is different in each case (a
trial number for the Rescorla-Wagner model and a time step for the TD model),
and in the TD model there is a one-time-step lead in the prediction target R.
The TD model is equivalent to the backward view of the semi-gradient TD(A)
algorithm with linear function approximation (Chapter 12), except that Rt in
the model does not have to be a reward signal as it does when the TD algorithm
is used to learn a value function for policy-improvement.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=942 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.05pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;mso-list:l40 level1 lfo75;
tab-stops:47.05pt;background:transparent&#39;&gt;&lt;a name=bookmark236&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;14.2.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=941&gt;&lt;span lang=EN-US&gt;TD Model
Simulations&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Real-time
conditioning models like the TD model are interesting primarily because they
make predictions for a wide range of situations that cannot be represented by
trial-level models. These situations involve the timing and durations of
conditionable stimuli, the timing of these stimuli in relation to the timing of
the US, and the timing and shapes of CRs. For example, the US generally must
begin after the onset of a neutral stimulus for conditioning to occur, with the
rate and effectiveness of learning depending on the inter-stimulus interval, or
ISI, the interval between the onsets of the CS and the US. When CRs appear,
they generally begin before the appearance of the US and their temporal
profiles change during learning. In conditioning with compound CSs, the
component stimuli of the compound CSs may not all begin and end at the same
time, sometimes forming what is called a &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span
lang=EN-US&gt;serial compound&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; in
which the component stimuli occur in a sequence over time. Timing
considerations like these make it important to consider how stimuli are
represented, how these representations unfold over time during and between
trials, and how they interact with discounting and eligibility traces.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Figure 14.2 shows three of the stimulus representations that have
been used in exploring the behavior of the TD model: the &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;complete serial compound&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; (CSC), the &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span
lang=EN-US&gt;microstimulus&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; (MS),
and the &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;presence&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; representations (Ludvig, Sutton, and Kehoe, 2012).
These representations differ in the degree to which they force generalization
among nearby time points during which a stimulus is present.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The simplest of the representations shown in Figure 14.2 is the
presence repre&amp;shy;sentation in the figure\A1\AFs right column. This representation has
a single feature for each component CS present on a trial, where the feature
has value 1 whenever that component is present, and 0 otherwise&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;.&lt;a style=&#39;mso-footnote-id:
ftn28&#39; href=&#34;#_ftn28&#34; name=&#34;_ftnref28&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:
footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=21Batang0&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt;mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[28]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; The presence representation is not a real&amp;shy;istic
hypothesis about how stimuli are represented in an animal\A1\AFs brain, but as we
describe below, the TD model with this representation can produce many of the
timing phenomena seen in classical conditioning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.95pt;
margin-left:2.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;For the CSC representation (left
column of Figure 14.2), the onset of each exter&amp;shy;nal stimulus initiates a
sequence of precisely-timed short-duration internal signals that continues
until the external stimulus ends&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;.&lt;sup&gt;5&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; This is like assuming the animal\A1\AFs nervous system has a clock that
keeps precise track of time during stimulus presenta-&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;line-height:11.05pt;mso-line-height-rule:
exactly;tab-stops:332.7pt;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;throughout the trial, there is a feature, &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;xi,&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;
for each component CS&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; =&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;where
&lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;Xi(St)&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; = 1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:2.0pt;margin-bottom:.0001pt;line-height:11.05pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;for all times &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;
when the CS&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;is
present, and equals zero otherwise.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:29.05pt;
margin-left:2.0pt;line-height:11.05pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=21Batangf4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;5&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;In our formalism,
for each CS component CS&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;present
on a trial, and for each time step &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span
lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; during a trial,
there is a separate feature &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;x&lt;sup&gt;i&lt;/sup&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;, where &lt;/span&gt;&lt;/span&gt;&lt;span class=21f1&gt;&lt;span
lang=EN-US&gt;x&lt;sup&gt;t&lt;/sup&gt;(St^)&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; =
1 if &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; = &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU8&gt;&lt;span style=&#39;font-size:7.5pt;mso-ansi-language:ZH-TW&#39;&gt;ح&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;for
any &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU8&gt;&lt;span style=&#39;font-size:7.5pt;mso-ansi-language:ZH-TW&#39;&gt;ح&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;at
which CS&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;is present, and equals
0 otherwise. This is different from the CSC representation in Sutton and Barto
(1990) in which there are the same distinct features for each time step but no
reference to external stimuli; hence the name complete serial compound.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=1011 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:92.0pt;margin-bottom:.0001pt;line-height:8.5pt;mso-line-height-rule:
exactly;tab-stops:213.7pt 278.7pt;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Complete
Serial ,&lt;/span&gt;&lt;span class=101MingLiU&gt;&lt;span style=&#39;font-size:4.0pt;mso-ansi-language:
ZH-TW;font-weight:normal&#39;&gt;ߊ&lt;/span&gt;&lt;/span&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;i.&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;^&lt;/span&gt;&lt;/p&gt;

&lt;p class=1011 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
4.3pt;margin-left:106.0pt;text-align:left;line-height:8.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Compound &lt;sup&gt;M(Crost(mul(
Presence&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:210.5pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=281 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=281 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:210.5pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_56&#34; o:spid=&#34;_x0000_i1064&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image149&#34;
   style=&#39;width:272.25pt;height:210.75pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image152.jpg&#34;
    o:title=&#34;image149&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=166 style=&#39;margin-top:0cm;text-align:justify;text-justify:inter-ideograph;
  line-height:13.45pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-height:210.5pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt&#39;&gt;&lt;span class=162&gt;&lt;span
  lang=EN-US&gt;Figure 14.2: Three stimulus representations (in columns) sometimes
  used with the TD model. Each row represents one element of the stimulus
  representation. The three representations vary along a temporal
  generalization gradient, with no general&amp;shy;ization between nearby time points
  in the complete serial compound (left column) and complete generalization between
  nearby time points in the presence representation (right column). The
  microstimulus representation occupies a middle ground. The degree of temporal
  generalization determines the temporal granularity with which US predictions
  are learned. Adapted with minor changes from &lt;/span&gt;&lt;/span&gt;&lt;span class=163&gt;&lt;span
  lang=EN-US&gt;Learning &amp;amp; Behavior, &lt;/span&gt;&lt;/span&gt;&lt;span class=162&gt;&lt;span
  lang=EN-US&gt;Evaluating the TD Model of Classical Conditioning, volume 40,
  2012, p. 311, E. A. Ludvig, R. S. Sutton, E. J. Kehoe. With permission of
  Springer.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;tions; it is
what engineers call a \A1\B0tapped delay line.\A1\B1 Like the presence representation,
the CSC representation is unrealistic as a hypothesis about how the brain
internally represents stimuli, but Ludvig et al. (2012) call it a \A1\B0useful
fiction\A1\B1 because it can reveal details of how the TD model works when
relatively unconstrained by the stimulus representation. The CSC representation
is also used in most TD models of dopamine-producing neurons in the brain, a
topic we take up in Chapter 15. The CSC representation is often viewed as an
essential part of the TD model, although this view is mistaken.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The MS representation (center column of Figure 14.2) is like the CSC
represen&amp;shy;tation in that each external stimulus initiates a cascade of internal
stimuli, but in this case the internal stimuli\A1\AAthe microstimuli\A1\AAare not of such
limited and non&amp;shy;overlapping form; they are extended over time and overlap. As
time elapses from stimulus onset, different sets of microstimuli become more or
less active, and each subsequent microstimulus becomes progressively wider in
time and reaches a lower maximal level. Of course, there are many MS
representations depending on the nature of the microstimuli, and a number of
examples of MS representations have been studied in the literature, in some
cases along with proposals for how an ani&amp;shy;mal\A1\AFs brain might generate them (see
the Bibliographic and Historical Comments at the end of this chapter). MS
representations are more realistic than the presence or CSC representations as
hypotheses about neural representations of stimuli, and they allow the behavior
of the TD model to be related to a broader collection of phenomena observed in
animal experiments. In particular, by assuming that cas&amp;shy;cades of microstimuli
are initiated by USs as well as by CSs, and by studying the significant effects
on learning of interactions between microstimuli, eligibility traces, and
discounting, the TD model is helping to frame hypotheses to account for many of
the subtle phenomena of classical conditioning and how an animal\A1\AFs brain might
produce them. We say more about this below, particularly in Chapter 15 where we
discuss reinforcement learning and neuroscience.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Even with the simple presence representation, however, the TD model
produces all the basic properties of classical conditioning that are accounted
for by the Rescorla- Wagner model, plus features of conditioning that are
beyond the scope of trial-level models. For example, as we have already
mentioned, a conspicuous feature of clas&amp;shy;sical conditioning is that the US
generally must begin &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;after&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; the onset of a neutral stimulus for conditioning to
occur, and that after conditioning, the CR begins &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;before &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;the appearance of the US. In other words, conditioning generally
requires a positive ISI, and the CR generally anticipates the US. How the
strength of conditioning (e.g., the percentage of CRs elicited by a CS) depends
on the ISI varies substantially across species and response systems, but it
typically has the following properties: it is neg&amp;shy;ligible for a zero or
negative ISI, i.e., when the US onset occurs simultaneously with, or earlier
than, the CS onset (although research has found that associative strengths
sometimes increase slightly or become negative with negative ISIs); it
increases to a maximum at a positive ISI where conditioning is most effective;
and it then decreases to zero after an interval that varies widely with
response systems. The precise shape of this dependency for the TD model depends
on the values of its parameters and&lt;br clear=all style=&#39;page-break-before:always&#39;&gt;
details of the stimulus representation, but these basic features of
ISI-dependency are core properties of the TD model.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;One of the theoretical issues arising with serial-compound
conditioning, that is, conditioning with a compound CS whose components occur
in a sequence, concerns the facilitation of remote associations. It has been
found that if the empty trace interval between the CS and the US is filled with
a second CS to form a serial- compound stimulus, then conditioning to the first
CS is facilitated. Figure 14.3 shows the behavior of the TD model with the
presence representation in a simulation of such an experiment whose timing
details are shown at the top of the figure. Consistent with the experimental
results (Kehoe, 1982), the model shows facilitation of both&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=right style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:
0cm;margin-left:0cm;margin-bottom:.0001pt;text-align:right;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;of the first CS due&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:93.0pt;margin-bottom:
12.3pt;margin-left:1.0pt;text-align:left;line-height:13.7pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;the rate of
conditioning and the asymptotic level of conditioning to the presence of the
second CS.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=1021 style=&#39;margin-top:0cm;margin-right:187.0pt;margin-bottom:83.25pt;
margin-left:1.0pt;background:transparent&#39;&gt;&lt;v:shape id=&#34;Text_x0020_Box_x0020_154&#34;
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lang=EN-US&gt;stimulus in the TD&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;model. Top: temporal
relationships among stimuli within a trial. Bottom: behavior over trials of
CSA\A1\AFs associative strength when CSA is presented in a serial compound as shown
in the top panel, and when presented in an identical temporal relationship to
the US, only without CSB. Adapted from Sutton and Barto (1990).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
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lang=EN-US&gt;A well-known demonstration of the effects on conditioning of
temporal relation&amp;shy;ships among stimuli within a trial is an experiment by Egger
and Miller (1962) that involved two overlapping CSs in a delay configuration as
shown in the top panel of Figure 14.4. Although CSB was in a better temporal
relationship with the US, the presence of CSA substantially reduced
conditioning to CSB as compared to controls in which CSA was absent. The bottom
panel of Figure 14.4 shows the same result be&amp;shy;ing generated by the TD model in
a simulation of this experiment with the presence representation.&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
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&lt;p class=691 align=left style=&#39;margin-top:14.2pt;margin-right:113.0pt;
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lang=EN-US&gt;TRIALS&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:37.65pt;
margin-left:0cm;line-height:11.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Figure 14.4: The Egger-Miller, or
primacy, effect in the TD model. Top: temporal rela&amp;shy;tionships among stimuli
within a trial. Bottom: behavior over trials of CSB\A1\AFs associative strength when
CSB is presented with and without CSA. Adapted from Sutton and Barto (1990).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
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lang=EN-US&gt;The TD model accounts for blocking because it is an error-correcting
learning rule like the Rescorla-Wagner model. Beyond accounting for basic
blocking results, however, the TD model predicts (with the presence
representation and more complex representations a well) that blocking is
reversed if the blocked stimulus is moved earlier in time so that its onset
occurs before the onset of the blocking stimulus. This feature of the TD
model\A1\AFs behavior deserves attention because it had not been observed at the
time of the model\A1\AFs introduction. Recall that in blocking, if an animal has
already learned that one CS predicts a US, then learning that a newly-added
second CS also predicts the US is much reduced, i.e., is blocked. But if the
newly- added second CS begins earlier than the pretrained CS, then\A1\AAaccording to
the TD model\A1\AA learning to the newly-added CS is not blocked. In fact, as
training continues and the newly-added CS gains associative strength, and the
pretrained CS loses associative strength. The behavior of the TD model under
these conditions is shown in Figure 14.5. This simulation experiment differed
from the Egger-Miller experiment of Figure 14.4 in that the shorter CS with the
later onset was given prior training until it was fully associated with the US.
This surprising prediction led Kehoe, Scheurs, and Graham (1987) to conduct the
experiment using the well-studied rabbit nictitating membrane preparation.
Their results confirmed the model\A1\AFs prediction, and they noted that non-TD
models have considerable difficulty explaining their data.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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    between stimuli. Bottom: behavior over trials of CSB\A1\AFs associative strength
    when CSB is presented with and without CSA. The only difference between
    this simulation and that shown in Figure 14.4 was that here CSB started out
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    background:transparent&#39;&gt;&lt;span class=700ptExact&gt;&lt;span lang=EN-US
    style=&#39;letter-spacing:-1.0pt&#39;&gt;TRIALS&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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&lt;/v:shape&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;With the TD model, an earlier
predictive stimulus takes precedence over a later predictive stimulus because,
like all the prediction methods described in this book, the TD model is based
on the backup idea: updates to associative strengths shift the strengths at a
particular state toward a \A1\B0backed-up\A1\B1 strength for that state. An&amp;shy;other
consequence of backups is that the TD model provides an account of higher-&lt;br
clear=all style=&#39;page-break-before:always&#39;&gt;
order conditioning, a feature of classical conditioning that is beyond the
scope of the Rescoral-Wagner and similar models. As we described above,
higher-order con&amp;shy;ditioning is the phenomenon in which a previously-conditioned
CS can act as a US in conditioning another initially neutral stimulus. Figure
14.6 shows the behavior of the TD model (again with the presence
representation) in a higher-order condi&amp;shy;tioning experiment\A1\AAin this case it is
second-order conditioning. In the first phase (not shown in the figure), CSB is
trained to predict a US so that its associative strength increases, here to
1.6. In the second phase, CSA is paired with CSB in the absence of the US, in
the sequential arrangement shown at the top of the figure. CSA acquires
associative strength even though it is never paired with the US. With continued
training, CSA\A1\AFs associative strength reaches a peak and then decreases because
the associative strength of CSB, the secondary reinforcer, decreases so that it
loses its ability to provide secondary reinforcement. CSB\A1\AFs associative
strength decreases because the US does not occur in these higher-order
conditioning trials. These are &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;extinction
trials&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; for CSB because its
predictive relationship to the US is disrupted so that its ability to act as a
reinforcer decreases. This same pattern is seen in animal experiments. This
extinction of conditioned reinforcement in higher- order conditioning trials
makes it difficult to demonstrate higher-order conditioning unless the original
predictive relationships are periodically refreshed by occasionally inserting
first-order trials.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The TD model produces an analog of second- and higher-order conditioning
be-&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:
line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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    conditioning with the TD model. Top: temporal relationships between
    stimuli. Bottom: behavior of the associative strengths associated with CSA
    and CSB over trials. The second stimulus, CSB, has an initial associative
    strength of 1.653 at the beginning of the simulation. Adapted from Sutton
    and Barto (1990).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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    class=690ptExact&gt;&lt;span lang=EN-US style=&#39;font-size:10.0pt;letter-spacing:
    0pt&#39;&gt;TRIALS&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;cause &lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;{)(St+i,wt) - v(St,wt)
appears in the TD error &amp;amp; (14.5). This means that as a result of previous
learning, &lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;v(St+i,wt) can differ from v(St,wt), making &lt;/span&gt;&lt;span
class=MingLiUfff3&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:EN-US&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;non-zero (a temporal difference). This difference has the same
status as Rt+i in (14.5), im&amp;shy;plying that as far as learning is concerned there
is no difference between a temporal difference and the occurrence of a US. In
fact, this feature of the TD algorithm is one of the major reasons for its
development, which we now understand through its connection to dynamic
programming as described in Chapter &lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. Backing up values is
intimately related to second-order, and higher-order, conditioning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;In the examples of the TD
model\A1\AFs behavior described above, we examined only the changes in the
associative strengths of the CS components; we did not look at what the model
predicts about properties of an animal\A1\AFs conditioned responses (CRs): their
timing, shape, and how they develop over conditioning trials. These properties
depend on the species, the response system being observed, and parameters of
the conditioning trials, but in many experiments with different animals and
different response systems, the magnitude of the CR, or the probability of a
CR, increases as the expected time of the US approaches. For example, in
classical conditioning of a rabbit\A1\AFs nictitating membrane response that we
mentioned above, over conditioning trials the delay from CS onset to when the
nictitating membrane begins to move across the eye decreases over trials, and
the amplitude of this anticipatory closure gradually increases over the
interval between the CS and the US until the membrane reaches maximal closure
at the expected time of the US. The timing and shape of this CR is critical to
its adaptive significance\A1\AAcovering the eye too early reduces vision (even
though the nictitating membrane is translucent), while covering it too late is
of little protective value. Capturing CR features like these is challenging for
models of classical conditioning.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The TD model does not include as part of its
definition any mechanism for trans&amp;shy;&lt;br clear=all style=&#39;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;lating the time
course of the US prediction, {)(St,wt), into a profile that can be compared
with the properties of an animal\A1\AFs CR. The simplest choice is to let the time
course of a simulated CR equal the time course of the US prediction. In this
case, features of simulated CRs and how they change over trials depend only on
the stimulus representation chosen and the values of the model\A1\AFs parameters a, &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;, and A.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Figure 14.7 shows the time courses of US predictions at different
points during learning with the three representations shown in Figure 14.2. For
these simulations the US occurred 25 times steps after the onset of the CS, and
&lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; = .05, A = .95 and &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; = .97. With the CSC representation (Figure 14.7 left), the curve of
the US prediction formed by the TD model increases exponentially throughout the
interval between the CS and the US until it reaches a maximum exactly when the
US occurs (at time step 25). This exponential increase is the result of
discounting in the TD model learning rule. With the presence representation
(Figure 14.7 middle), the US prediction is nearly constant while the stimulus
is present because there is only one weight, or associative strength, to be
learned for each stimulus. Consequently, the TD model with the presence
representation cannot recreate many features of CR timing. With an MS
representation (Figure 14.7 right), the development of the TD modePs US
prediction is more complicated. After 200 trials the prediction\A1\AFs profile is a
reasonable approximation of the US prediction curve produced with the CSC
representation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
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&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;span class=822&gt;&lt;span lang=EN-US&gt;Time Steps&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection362&gt;

&lt;p class=MsoNormal style=&#39;margin-top:1.45pt;margin-right:0cm;margin-bottom:
1.45pt;margin-left:0cm;line-height:12.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection363&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Figure 14.7:
Time course of US prediction over the course of acquisition for the TD model
with three different stimulus representations. Left: With the complete serial
compound &lt;/span&gt;&lt;/span&gt;&lt;span class=211pt3&gt;&lt;span lang=EN-US&gt;(CSC),&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; the US prediction increases exponentially through
the interval, peaking at the time of the US. At asymptote (trial 200), the US
prediction peaks at the US intensity (1 in these simulations). Middle: With the
presence representa&amp;shy;tion, the US prediction converges to an almost constant
level. This constant level is determined by the US intensity and the length of
the CS-US interval. Right: With the microstimulus representation, at asymptote,
the TD model approximates the exponentially increasing time course depicted
with the CSC through a linear combi&amp;shy;nation of the different microstimuli.
Adapted with minor changes from &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;Learning
&lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;amp;
&lt;/span&gt;&lt;span lang=EN-US&gt;Behavior,&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; Evaluating the TD Model of Classical Conditioning, volume 40, 2012,
E. A. Ludvig, R. S. Sutton, E. J. Kehoe. With permission of Springer.&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:24.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The US prediction curves shown in Figure 14.7 were not intended to
precisely match profiles of CRs as they develop during conditioning in any
particular animal experiment, but they illustrate the strong influence that the
stimulus representation has on predictions derived from the TD model. Further,
although we can only men&amp;shy;tion it here, how the stimulus representation
interacts with discounting and eligibility traces is important in determining
properties of the US prediction profiles produced by the TD model. Another
dimension beyond what we can discuss here is the influ&amp;shy;ence of different
response-generation mechanisms that translate US predictions into CR profiles;
the profiles shown in Figure 14.7 are \A1\B0raw\A1\B1 US prediction profiles. Even
without any special assumption about how an animal\A1\AFs brain might produce overt
responses from US predictions, however, the profiles in Figure 14.7 for the CSC
and MS representations increase as the time of the US approaches and reach a
maximum at the time of the US, as is seen in many animal conditioning
experiments.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:24.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The TD model, when combined with particular stimulus representations
and response- generation mechanisms, is able to account for a surprisingly-wide
range of phenomena observed in animal classical conditioning experiments, but
it is far from being a per&amp;shy;fect model. To generate other details of classical
conditioning the model needs to be extended, perhaps by adding model-based
elements and mechanisms for adap&amp;shy;tively altering some of its parameters. Other
approaches to modeling classical condi&amp;shy;tioning depart significantly from the
Rescorla-Wagner-style error-correction process. Bayesian models, for example,
work within a probabilistic framework in which expe&amp;shy;rience revises probability
estimates. All of these models usefully contribute to our understanding of
classical conditioning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:24.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Perhaps the most notable feature of the TD model is that it is based
on a theory\A1\AA the theory we have described in this book\A1\AAthat suggests an account
of what an animal\A1\AFs nervous system is &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span
lang=EN-US&gt;trying to do&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; while
undergoing conditioning: it is trying to form accurate &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;long-term predictions,&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; consistent with the limitations imposed by the way stimuli are
represented and how the nervous system works. In other words, it suggests a &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;normative account&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; of classical conditioning in which long-term, instead of immediate,
prediction is a key feature.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:24.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The development of the TD model of classical conditioning is one
instance in which the explicit goal was to model some of the details of animal
learning behavior. In addition to its standing as an &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;algorithm&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;, then, TD learning is also the basis of this &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;model&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;
of aspects of biological learning. As we discuss in Chapter 15, TD learning has
also turned out to underlie an influential model of the activity of neurons
that produce dopamine, a chemical in the brain of mammals that is deeply
involved in reward processing. These are instances in which reinforcement
learning theory makes detailed contact with animal behavioral and neural data.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:24.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;We now turn to considering correspondences between reinforcement learning
and animal behavior in instrumental conditioning experiments, the other major
type of laboratory experiment studied by animal learning psychologists.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection364&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l95 level1 lfo74;tab-stops:43.9pt;background:transparent&#39;&gt;&lt;a
name=bookmark238&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;14.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Instrumental Conditioning&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=492 style=&#39;margin-right:1.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=491&gt;&lt;span lang=EN-US&gt;In &lt;/span&gt;&lt;/span&gt;&lt;span
class=49CenturySchoolbook0&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;instrumental
conditioning&lt;/span&gt;&lt;/span&gt;&lt;span class=491&gt;&lt;span lang=EN-US&gt; experiments
learning depends on the consequences of behavior: the delivery of a reinforcing
stimulus is contingent on what the animal does. In classical conditioning
experiments, in contrast, the reinforcing stimulus\A1\AA the US\A1\AAis delivered
independently of the animal\A1\AFs behavior. Instrumental condi&amp;shy;tioning is usually
considered to be the same as &lt;/span&gt;&lt;/span&gt;&lt;span class=49CenturySchoolbook0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;operant conditioning,&lt;/span&gt;&lt;/span&gt;&lt;span
class=491&gt;&lt;span lang=EN-US&gt; the term B. F. Skinner (1938, 1961) introduced for
experiments with behavior-contingent reinforce&amp;shy;ment, though the experiments and
theories of those who use these two terms differ in a number of ways, some of
which we touch on below. We will exclusively use the term instrumental
conditioning for experiments in which reinforcement is contingent upon
behavior. The roots of instrumental conditioning go back to experiments per&amp;shy;formed
by the American psychologist Edward Thorndike one hundred years before
publication of the first edition of this book.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=491&gt;&lt;span
lang=EN-US&gt;Thorndike observed the behavior of cats when they were placed in
\A1\B0puzzle boxes\A1\B1 from which they could escape by appropriate actions (Figure
14.8). For example, a cat could open the door of one box by performing a
sequence of three separate actions: depressing a platform at the back of the
box, pulling a string by clawing at it, and pushing a bar up or down. When
first placed in a puzzle box, with food visible outside, all but a few of
Thorndike\A1\AFs cats displayed \A1\B0evident signs of discomfort\A1\B1 and extraordinarily
vigorous activity \A1\B0to strive instinctively to escape from confinement\A1\B1
(Thorndike, 1898).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.3pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=491&gt;&lt;span lang=EN-US&gt;In experiments
with different cats and boxes with different escape mechanisms, Thorndike
recorded the amounts of time each cat took to escape over multiple ex&amp;shy;periences
in each box. He observed that the time almost invariably decreased with
successive experiences, for example, from 300 seconds to &lt;/span&gt;&lt;/span&gt;&lt;span
class=49Constantia&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=491&gt;&lt;span
lang=EN-US&gt; or 7 seconds. He described&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:147.85pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=197 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=197 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:147.85pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_60&#34; o:spid=&#34;_x0000_i1059&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image159&#34;
   style=&#39;width:206.25pt;height:147.75pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image162.jpg&#34;
    o:title=&#34;image159&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=255 style=&#39;line-height:11.75pt;mso-line-height-rule:exactly;
  background:transparent;mso-element:frame;mso-element-frame-height:147.85pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span class=253&gt;&lt;span lang=EN-US&gt;Figure 14.8: One of Thorndike\A1\AFs
  puzzle boxes. Reprinted from Thorndike, Animal Intelli&amp;shy;gence: An Experimental
  Study of the Associative Processes in Animals, &lt;/span&gt;&lt;/span&gt;&lt;span
  class=25CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;The
  Psychological Review, Series of Monograph Supplements,&lt;/span&gt;&lt;/span&gt;&lt;span
  class=253&gt;&lt;span lang=EN-US&gt; II(4), Macmillan, New York, 1898, permission
  pending.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.35pt;
margin-left:0cm;line-height:8.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;cats\A1\AF behavior in a puzzle box like this:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:28.0pt;margin-bottom:9.0pt;
margin-left:28.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The cat that is clawing all over
the box in her impulsive struggle will probably claw the string or loop or
button so as to open the door. And gradually all the other non-successful
impulses will be stamped out and the particular impulse leading to the
successful act will be stamped in by the resulting pleasure, until, after many
trials, the cat will, when put in the box, immediately claw the button or loop in
a definite way. (Thorndike 1898, p. 13)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;These and
other experiments (some with dogs, chicks, monkeys, and even fish) led
Thorndike to formulate a number of \A1\B0laws\A1\B1 of learning, the most influential
being the &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;Law of Effect,&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;a version of which we quoted in Chapter 1. This law describes what
is generally known as learning by trial and error. As mentioned in Chapter &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;, many aspects of the Law of Effect have generated
controversy, and its details have been modified over the years. Still the
law\A1\AAin one form or another&lt;/span&gt;&lt;/span&gt;&lt;span class=21MingLiU&gt;&lt;span
style=&#39;font-size:9.0pt&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;expresses
an enduring principle of learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Essential features of reinforcement learning algorithms correspond
to features of animal learning described by the Law of Effect. First,
reinforcement learning algo&amp;shy;rithms are &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;selectional&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;, meaning that they try alternatives and select
among them by comparing their consequences. Second, reinforcement learning
algorithms are &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;associative&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;, meaning that the alternatives found by selection are associated
with particular situations, or states, to form the agent\A1\AFs policy. Like
learning described by the Law of Effect, reinforcement learning is not just the
process of &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;finding&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;actions that produce a lot of reward, but also of &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;connecting&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;these actions to situations or states. Thorndike
used the phrase learning by \A1\B0selecting and connecting\A1\B1 (Hilgard, 1956). Natural
selection in evolution is a prime example of a selectional process, but it is
not associative (at least as it is commonly understood); supervised learning is
associative, but it is not selectional because it relies on instructions that
directly tell the agent how to change its behavior.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;In computational terms, the Law of Effect describes an elementary
way of com&amp;shy;bining &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;search&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;memory&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;:
search in the form of trying and selecting among many actions in each situation,
and memory in the form of associations linking situations with the actions
found\A1\AAso far\A1\AAto work best in those situations. Search and memory are essential
components of all reinforcement learning algorithms, whether memory takes the
form of an agent\A1\AFs policy, value function, or environment model.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;A reinforcement learning algorithm\A1\AFs need to search means that it
has to explore in some way. Animals clearly explore as well, and early animal
learning researchers disagreed about the degree of guidance an animal uses in
selecting its actions in sit&amp;shy;uations like Thorndike\A1\AFs puzzle boxes. Are actions
the result of \A1\B0absolutely random, blind groping\A1\B1 (Woodworth, 1938, p. 777), or
is there some degree of guidance, either from prior learning, reasoning, or
other means? Although some thinkers, including Thorndike, seem to have taken
the former position, others favored more deliberate exploration. Reinforcement
learning algorithms allow wide latitude for how much guidance an agent can
employ in selecting actions. The forms of exploration we have used in the
algorithms presented in this book, such as e-greedy and upper-confidence- bound
action selection, are merely among the simplest. More sophisticated methods are
possible, with the only stipulation being that there has to be &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;some&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;
form of exploration for the algorithms to work effectively.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The feature of our treatment of reinforcement learning allowing the
set of actions available at any time to depend on the environment\A1\AFs current
state echoes something Thorndike observed in his cats\A1\AF puzzle-box behaviors.
The cats selected actions from those that they instinctively perform in their
current situation, which Thorndike called their \A1\B0instinctual impulses.\A1\B1 First
placed in a puzzle box, a cat instinctively scratches, claws, and bites with
great energy: a cat\A1\AFs instinctual responses to finding itself in a confined
space. Successful actions are selected from these and not from every possible
action or activity. This is like the feature of our formalism where the action
selected from a state &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; belongs to a set of admissible actions, &lt;/span&gt;&lt;/span&gt;&lt;span
class=211pt&gt;&lt;span lang=EN-US&gt;A(s).&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; Specifying these sets is an important aspect of reinforcement
learning because it can radically simplify learning. They are like an animal\A1\AFs
instinctual impulses. On the other hand, Thorndike\A1\AFs cats might have been
exploring according to an instinctual context- specific &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;ordering&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; over actions rather than by just selecting from a set of
instinctual impulses. This is another way to make reinforcement learning
easier.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Among the most prominent animal learning researchers influenced by
the Law of Effect were Clark Hull (e.g., Hull, 1943) and B. F. Skinner (e.g.,
Skinner, 1938). At the center of their research was the idea of selecting
behavior on the basis of its consequences. Reinforcement learning has features
in common with Hull\A1\AFs theory, which included eligibility-like mechanisms and
secondary reinforcement to account for the ability to learn when there is a
significant time interval between an action and the consequent reinforcing
stimulus (see Section 14.4). Randomness also played a role in Hull\A1\AFs theory
through what he called \A1\B0behavioral oscillation\A1\B1 to introduce exploratory
behavior.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Skinner did not fully subscribe to the memory aspect of the Law of
Effect. Be&amp;shy;ing averse to the idea of associative linkages, he instead
emphasized selection from spontaneously-emitted behavior. He introduced the
term \A1\B0operant\A1\B1 to emphasize the key role of an action\A1\AFs effects on an animal\A1\AFs
environment. Unlike the experiments of Thorndike and others, which consisted of
sequences of separate trials, Skinner\A1\AFs operant conditioning experiments
allowed animal subjects to behave for extended periods of time without
interruption. He invented the operant conditioning cham&amp;shy;ber, now called a
\A1\B0Skinner box,\A1\B1 the most basic version of which contains a lever or key that an
animal can press to obtain a reward, such as food or water, which would be
delivered according to a well-defined rule, called a reinforcement schedule. By
recording the cumulative number of lever presses as a function of time, Skinner
and his followers could investigate the effect of different reinforcement
schedules on the animal\A1\AFs rate of lever-pressing. Modeling results from
experiments likes these using the reinforcement learning principles we present
in this book is not well developed, but we mention some exceptions in the
Bibliographic and Historical Remarks section at the end of this chapter.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.55pt;
margin-left:0cm;text-indent:11.0pt;line-height:8.0pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Another of Skinner\A1\AFs
contributions resulted from his recognition of the effective&amp;shy;ness of training
an animal by reinforcing successive approximations of the desired behavior, a
process he called &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;shaping.&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; Although this technique had been used by others,
including Skinner himself, its significance was impressed upon him when he and
colleagues were attempting to train a pigeon to bowl by swiping a wooden ball
with its beak. After waiting for a long time without seeing any swipe that they
could reinforce, they&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:28.0pt;margin-bottom:9.0pt;
margin-left:28.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;... decided to reinforce any
response that had the slightest resemblance to a swipe\A1\AAperhaps, at first,
merely the behavior of looking at the ball\A1\AA and then to select responses which
more closely approximated the final form. The result amazed us. In a few
minutes, the ball was caroming off the walls of the box as if the pigeon had
been a champion squash player. (Skinner, 1958, p. 94)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Not only did
the pigeon learn a behavior that is unusual for pigeons, it learned quickly
through an interactive process in which its behavior and the reinforcement
contingencies changed in response to each other. Skinner compared the process
of altering reinforcement contingencies to the work of a sculptor shaping clay
into a de&amp;shy;sired form. Shaping is a powerful technique for computational
reinforcement learning systems as well. When it is difficult for an agent to
receive any non-zero reward sig&amp;shy;nal at all, either due to sparseness of
rewarding situations or their inaccessibility given initial behavior, starting
with an easier problem and incrementally increasing its difficulty as the agent
learns can be an effective, and sometimes indispensable, strategy.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;A concept from psychology that is especially relevant in the context
of instrumental conditioning is &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;motivation&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;, which refers to processes that influence the
direction and strength, or vigor, of behavior. Thorndike\A1\AFs cats, for example,
were motivated to escape from puzzle boxes because they wanted the food that
was sitting just outside. Obtaining this goal was rewarding to them and
reinforced the actions allowing them to escape. It is difficult to link the
concept of motivation, which has many dimensions, in a precise way to
reinforcement learning\A1\AFs computational perspective, but there are clear links
with some of its dimensions.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;In one sense, a reinforcement learning agent\A1\AFs reward signal is at
the base of its motivation: the agent is motivated to maximize the total reward
it receives over the long run. A key facet of motivation, then, is what makes
an agent\A1\AFs experience rewarding. In reinforcement learning, reward signals
depend on the state of the reinforcement learning agent\A1\AFs environment and the
agent\A1\AFs actions. Further, as pointed out in Chapter 1, the state of the agent\A1\AFs
environment not only includes information about what is external to the
machine, like an organism or a robot, that houses the agent, but also what is
internal to this machine. Some internal state components correspond to what
psychologists call an animal\A1\AFs &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;motivational
state&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;, which influences what is
rewarding to the animal. For example, an animal will be more rewarded by eating
when it is hungry than when it has just finished a satisfying meal. The concept
of state dependence is broad enough to allow for many types of modulating
influences on the generation of reward signals.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Value functions provide a further link to psychologists\A1\AF concept of
motivation. If the most basic motive for selecting an action is to obtain as
much reward as possible, for a reinforcement learning agent that selects
actions using a value function, a more proximal motive is to &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;ascend the gradient of its value function&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;, that is, to select actions expected to lead to the
most highly-valued next states (or what is essentially the same thing, to
select actions with the greatest action-values). For these agents, value
functions are the main driving force determining the direction of their
behavior.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Another dimension of motivation is that an animal\A1\AFs motivational
state not only influences learning, but also influences the strength, or vigor,
of the animal\A1\AFs behavior after learning. For example, after learning to find
food in the goal box of a maze, a hungry rat will run faster to the goal box
than one that is not hungry. This aspect of motivation does not link so cleanly
to the reinforcement learning framework we present here, but in the
Bibliographical and Historical Remarks section at the end of this chapter we
cite several publications that propose theories of behavioral vigor based on
reinforcement learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:30.35pt;
margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;We turn now to
the subject of learning when reinforcing stimuli occur well after the events
they reinforce. The mechanisms used by reinforcement learning algorithms to
enable learning with delayed reinforcement\A1\AAeligibility traces and TD learning\A1\AA
closely correspond to psychologists\A1\AF hypotheses about how animals can learn
under these conditions.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l95 level1 lfo74;tab-stops:45.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark239&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;14.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Delayed Reinforcement&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The Law of
Effect requires a backward effect on connections, and some early critics of the
law could not conceive of how the present could affect something that was in
the past. This concern was amplified by the fact that learning can even occur
when there is a considerable delay between an action and the consequent reward
or penalty. Similarly, in classical conditioning, learning can occur when US
onset follows CS offset by a non-negligible time interval. We call this the
problem of delayed reinforcement, which is related to what Minsky (1961) called
the \A1\B0credit-assignment problem for learning systems\A1\B1: how do you distribute
credit for success among the many decisions that may have been involved in
producing it? The reinforcement learning algorithms presented in this book
include two basic mechanisms for addressing this problem. The first is the use
of eligibility traces, and the second is the use of TD methods to learn value
functions that provide nearly immediate evaluations of actions (in tasks like
instrumental conditioning experiments) or that provide immediate prediction
targets (in tasks like classical conditioning experiments). Both of these
methods correspond to similar mechanisms proposed in theories of animal
learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Pavlov (1927) pointed out that every stimulus must leave a trace in
the nervous system that persists for some time after the stimulus ends, and he
proposed that stimulus traces make learning possible when there is a temporal
gap between the CS offset and the US onset. To this day, conditioning under
these conditions is called &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;trace
conditioning&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; (Figure 14.1).
Assuming a trace of the CS remains when the US &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection365&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;arrives, learning occurs through the simultaneous presence of the
trace and the US. We discuss some proposals for trace mechanisms in the nervous
system in Chapter 15.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;Stimulus traces were also proposed as a means for
bridging the time interval be&amp;shy;tween actions and consequent rewards or penalties
in instrumental conditioning. In Hull\A1\AFs influential learning theory, for
example, \A1\B0molar stimulus traces\A1\B1 accounted for what he called an animal\A1\AFs &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;goal gradient&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;, a description of how the maximum strength of an
instrumentally-conditioned response decreases with increasing delay of
reinforcement (Hull, 1932, 1943). Hull hypothesized that an animal\A1\AFs actions
leave internal stimuli whose traces decay exponentially as functions of time
since an action was taken. Looking at the animal learning data available at the
time, he hypothesized that the traces effectively reach zero after 30 to 40
seconds.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;The eligibility traces used in the algorithms
described in this book are like Hull\A1\AFs traces: they are decaying traces of past
state visitations, or of past state-action pairs. Eligibility traces were
introduced by Klopf (1972) in his neuronal theory in which they are
temporally-extended traces of past activity at synapses, the connections
between neurons. Klopf\A1\AFs traces are more complex than the exponentially-decaying
traces our algorithms use, and we discuss this more when we take up his theory
in Section 15.9.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;To account for goal gradients that extend over
longer time periods than spanned by stimulus traces, Hull (1943) proposed that
longer gradients result from conditioned reinforcement passing backwards from
the goal, a process acting in conjunction with his molar stimulus traces.
Animal experiments showed that if conditions favor the development of
conditioned reinforcement during a delay period, learning does not decrease
with increased delay as much as it does under conditions that obstruct sec&amp;shy;ondary
reinforcement. Conditioned reinforcement is favored if there are stimuli that
regularly occur during the delay interval. Then it is as if reward is not
actually delayed because there is more immediate conditioned reinforcement.
Hull therefore envisioned that there is a primary gradient based on the delay
of the primary rein&amp;shy;forcement mediated by stimulus traces, and that this is
progressively modified, and lengthened, by conditioned reinforcement.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:21.35pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Algorithms
presented in this book that use both eligibility traces and value func&amp;shy;tions to
enable learning with delayed reinforcement correspond to Hull\A1\AFs hypothesis
about how animals are able to learn under these conditions. The actor-critic ar&amp;shy;chitecture
discussed in Sections 13.5, 15.7, and 15.8 illustrates this correspondence most
clearly. The critic uses a TD algorithm to learn a value function associated
with the system\A1\AFs current behavior, that is, to predict the current policy\A1\AFs
return. The actor updates the current policy based on the critic\A1\AFs predictions,
or more exactly, on changes in the critic\A1\AFs predictions. The TD error produced
by the critic acts as a conditioned reinforcement signal for the actor, providing
an immediate evaluation of performance even when the primary reward signal
itself is considerably delayed. Algorithms that estimate action-value
functions, such as Q-learning and Sarsa, sim&amp;shy;ilarly use TD learning principles
to enable learning with delayed reinforcement by means of conditioned
reinforcement. The close parallel between TD learning and the activity of
dopamine producing neurons that we discuss in Chapter 15 lends addi&amp;shy;tional
support to links between reinforcement learning algorithms and this aspect of
Hull\A1\AFs learning theory.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l95 level1 lfo74;tab-stops:44.65pt;background:transparent&#39;&gt;&lt;a
name=bookmark240&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;14.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Cognitive Maps&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Model-based
reinforcement learning algorithms use environment models that have elements in
common with what psychologists call &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span
lang=EN-US&gt;cognitive maps.&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;
Recall from our discussion of planning and learning in Chapter &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; that by an environment model we mean anything an
agent can use to predict how its environment will respond to its actions in
terms of state transitions and rewards, and by planning we mean any process
that computes a policy from such a model. Environment models consist of two
parts: the state-transition part encodes knowledge about the effect of actions
on state changes, and the reward-model part encodes knowledge about the reward
signals expected for each state or each state-action pair. A model-based
algorithm selects actions by using a model to predict the consequences of
possible courses of action in terms of future states and the reward signals
expected to arise from those states. The simplest kind of planning is to
compare the predicted consequences of collections of \A1\B0imagined\A1\B1 sequences of
decisions.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Questions about whether or not animals use environment models, and
if so, what are the models like and how are lthey learned, have played
influential roles in the history of animal learning research. Some researchers
challenged the then-prevailing stimulus-response (S-R) view of learning and
behavior, which corresponds to the simplest model-free way of learning
policies, by demonstrating &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;latent
learning&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;. In the earliest latent
learning experiment, two groups of rats were run in a maze. For the
experimental group, there was no reward during the first stage of the
experiment, but food was suddenly introduced into the goal box of the maze at
the start of the second stage. For the control group, food was in the goal box
throughout both stages. The question was whether or not rats in the
experimental group would have learned anything during the first stage in the
absence of food reward. Although the experimental rats did not &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;appear&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; to learn much during the first, unrewarded, stage, as soon as they
discovered the food that was introduced in the second stage, they rapidly
caught up with the rats in the control group. It was concluded that \A1\B0during the
non-reward period, the rats [in the experimental group] were developing a
latent learning of the maze which they were able to utilize as soon as reward
was introduced\A1\B1 (Blodgett, 1929).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Latent learning is most closely associated with the psychologist
Edward Tolman, who interpreted this result, and others like it, as showing that
animals could learn a \A1\B0cognitive map of the environment\A1\B1 in the absence of
rewards or penalties, and that they could use the map later when they were
motivated to reach a goal (Tolman, 1948). A cognitive map could also allow a
rat to plan a route to the goal that was different from the route the rat had
used in its initial exploration. Explanations of results like these led to the
enduring controversy lying at the heart of the behav- iorist/cognitive
dichotomy in psychology. In modern terms, cognitive maps are not restricted to
models of spatial layouts but are more generally environment models, or &lt;/span&gt;&lt;/span&gt;&lt;span
class=ac&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;models of an animal\A1\AFs \A1\B0task
space\A1\B1 (e.g., Wilson, Takahashi, Schoenbaum, and Niv, 2014). The cognitive map
explanation of latent learning experiments is analogous to the claim that
animals use model-based algorithms, and that environment models can be learned
even without explicit rewards or penalties. Models are then used for planning
when the animal is motivated by the appearance of rewards or penalties.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Tolman\A1\AFs account of how animals learn cognitive maps was that they
learn stimulus- stimulus, or S-S, associations by experiencing successions of
stimuli as they explore an environment. In psychology this is called &lt;span
class=affffb&gt;expectancy theory:&lt;/span&gt; given S-S associa&amp;shy;tions, the occurrence
of a stimulus generates an expectation about the stimulus to come next. This is
much like what control engineers call &lt;span class=affffb&gt;system identification,&lt;/span&gt;
in which a model of a system with unknown dynamics is learned from labeled
training examples. In the simplest discrete-time versions, training examples
are S-S&lt;sup&gt;;&lt;/sup&gt; pairs, where S is a state and S&lt;sup&gt;;&lt;/sup&gt;, the subsequent
state, is the label. When S is observed, the model creates the \A1\B0expectation\A1\B1
that S&#39; will be observed next. Models more useful for planning involve actions
as well, so that examples look like SA-S&#39;, where S&#39; is expected when action A
is executed in state S. It is also useful to learn how the environment
generates rewards. In this case, examples are of the form S-R or SA-R, where R
is a reward signal associated with S or the SA pair. These are all forms of
supervised learning by which an agent can acquire cognitive-like maps whether
or not it receives any non-zero reward signals while exploring its environment.&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l95 level1 lfo74;tab-stops:45.4pt;background:transparent&#39;&gt;&lt;a
name=bookmark241&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;14.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Habitual and Goal-directed
Behavior&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The distinction between model-free and
model-based reinforcement learning algo&amp;shy;rithms corresponds to the distinction
psychologists make between &lt;span class=affffb&gt;habitual&lt;/span&gt; and &lt;span
class=affffb&gt;goal- directed&lt;/span&gt; control of learned behavioral patterns.
Habits are behavior patterns trig&amp;shy;gered by appropriate stimuli and then
performed more-or-less automatically. Goal- directed behavior, according to how
psychologists use the phrase, is purposeful in the sense that it is controlled
by knowledge of the value of goals and the relationship between actions and
their consequences. Habits are sometimes said to be controlled by antecedent
stimuli, whereas goal-directed behavior is said to be controlled by its
consequences (Dickinson, 1980, 1985). Goal-directed control has the advantage
that it can rapidly change an animal\A1\AFs behavior when the environment changes
its way of reacting to the animal\A1\AFs actions. While habitual behavior responds
quickly to input from an accustomed environment, it is unable to quickly adjust
to changes in the environment. The development of goal-directed behavioral
control was likely a major advance in the evolution of animal intelligence.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Figure 14.9 illustrates the difference between
model-free and model-based decision strategies in a hypothetical task in which
a rat has to navigate a maze that has distinctive goal boxes, each delivering
an associated reward of the magnitude shown (Figure 14.9 top). Starting at Si,
the rat has to first select left (L) or right (R) and then has to select L or R
again at S&lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; or S&lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;3&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; to reach one of the goal boxes. The goal boxes are the terminal
states of each episode of the rat\A1\AFs episodic task. A model-free strategy
(Figure 14.9 lower left) relies on stored values for state-action pairs. These
action values (Q-values) are estimates of the highest return the rat can expect
for each action taken from each (nonterminal) state. They are obtained over
many trials of running the maze from start to finish. When the action values
have become good enough estimates of the optimal returns, the rat just has to
select at each state the action with the largest action value in order to make
optimal decisions. In this case, when the action-value estimates become
accurate enough, the rat selects L from Si and R from S&lt;/span&gt;&lt;span class=9ptd&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; to obtain
the maximum return of 4. A different model-free strategy might simply rely on a
cached policy instead of action values, making direct links from Si to L and
from S&lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; to R. In neither of these strategies do decisions rely on an
environment model. There is no need to consult a state-transition model, and no
connection is required between the features of the goal boxes and the rewards
they deliver.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Figure 14.9 (lower right)
illustrates a model-based strategy. It uses an environment model consisting of
a state-transition model and a reward model. The state-transition model is
shown as a decision tree, and the reward model associates the distinctive
features of the goal boxes with the rewards to be found in each. (The rewards
associated with states Si, S&lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, and S&lt;/span&gt;&lt;span
class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;3&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; are also part of the reward model, but here they are zero and are
not shown.) A model-based agent can decide which way to turn at each state by
using the model to simulate sequences of action choices to find a path yielding
the highest return. In this case the return is the reward obtained from the
outcome at the end of the path. Here, with a sufficiently accurate model, the
rat would select L and then R to obtain reward of 4. Comparing the predicted
returns of simulated paths is a simple form of planning, which can be done in a
variety of ways as discussed in Chapter &lt;/span&gt;&lt;span class=9ptd&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;When the environment of a
model-free agent changes the way it reacts to the agent\A1\AFs actions, the agent
has to acquire new experience in the changed environment during which it can
update its policy and/or value function. In the model-free strategy shown in
Figure 14.9 (lower left), for example, if one of the goal boxes were to somehow
shift to delivering a different reward, the rat would have to traverse the
maze, possibly many times, to experience the new reward upon reaching that goal
box, all the while updating either its policy or its action-value function (or
both) based on this experience. The key point is that for a model-free agent to
change the action its policy specifies for a state, or to change an action
value associated with a state, it has to move to that state, act from it,
possibly many times, and experience the consequences of its actions.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;A model-based agent can
accommodate changes in its environment without this kind of \A1\AEpersonal
experience\A1\AF with the states and actions affected by the change. A change in its
model automatically (through planning) changes its policy. Planning can
determine the consequences of changes in the environment that have never been
linked together in the agent\A1\AFs own experience. For example, again referring to
the maze task of Figure 14.9, imagine that a rat with a previously learned
transition and reward model is placed directly in the goal box to the right of
S&lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; to find that the reward available there now has value 1 instead of
4. The rat\A1\AFs reward model will change even though the action choices required
to find that goal box in the maze&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:274.3pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=366 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=366 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:274.3pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_61&#34; o:spid=&#34;_x0000_i1058&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image160&#34;
   style=&#39;width:330pt;height:275.25pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image163.jpg&#34;
    o:title=&#34;image160&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=1001 style=&#39;margin-top:20.5pt;margin-right:0cm;margin-bottom:17.25pt;
margin-left:81.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
9.0pt;mso-line-height-rule:exactly;tab-stops:right 297.0pt;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Model-Free&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Model-Based&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 style=&#39;margin-left:1.0pt;line-height:11.75pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=491&gt;&lt;span lang=EN-US&gt;Figure 14.9:
Model-based and model-free strategies to solve a hypothetical sequential
action- selection problem. Top: a rat navigates a maze with distinctive goal
boxes, each associated with a reward having the value shown. Lower left: a
model-free strategy relies on stored action values for all the state-action
pairs obtained over many learning trials. To make decisions the rat just has to
select at each state the action with the largest action value for that state.
Lower right: in a model-based strategy, the rat learns an environment model,
consisting of knowledge of state-action-next-state transitions and a reward
model consisting of knowledge of the reward associated with each distinctive
goal box. The rat can decide which way to turn at each state by using the model
to simulate sequences of action choices to find a path yielding the highest
return. Adapted from &lt;/span&gt;&lt;/span&gt;&lt;span class=49CenturySchoolbook0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;Trends in Cognitive Science,&lt;/span&gt;&lt;/span&gt;&lt;span
class=491&gt;&lt;span lang=EN-US&gt; volume 10, number 8, Y. Niv, D. Joel, and P. Dayan,
A Normative Perspective on Motivation, p. 376, 2006, with permission from
Elsevier.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;were not involved. The planning
process will bring knowledge of the new reward to bear on maze running without
the need for additional experience in the maze; in this case changing the
policy to right turns at both Si and S&lt;/span&gt;&lt;span class=9ptd&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;3&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; to obtain a return of
3.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Exactly this logic is the
basis of &lt;/span&gt;&lt;span class=ArialUnicodeMSff6&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;outcome-devaluation experiments&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt0&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;with animals. Results from these experiments provide insight into
whether an animal has learned a habit or if its behavior is under goal-directed
control. Outcome-devaluation ex&amp;shy;periments are like latent-learning experiments
in that the reward changes from one stage to the next. After an initial
rewarded stage of learning, the reward value of an outcome is changed,
including being shifted to zero or even to a negative value.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;An early important experiment
of this type was conducted by Adams and Dickin&amp;shy;son (1981). They trained rats
via instrumental conditioning until the rats energet&amp;shy;ically pressed a lever for
sucrose pellets in a training chamber. The rats were then placed in the same
chamber with the lever retracted and allowed non-contingent food, meaning that
pellets were made available to them independently of their actions. Af&amp;shy;ter
15-minutes of this free-access to the pellets, rats in one group were injected
with the nausea-inducing poison lithium chloride. This was repeated for three
sessions, in the last of which none of the injected rats consumed any of the
non-contingent pellets, indicating that the reward value of the pellets had
been decreased\A1\AAthe pel&amp;shy;lets had been devalued. In the next stage taking place a
day later, the rats were again placed in the chamber and given a session of
extinction training, meaning that the response lever was back in place but
disconnected from the pellet dispenser so that pressing it did not release
pellets. The question was whether the rats that had the reward value of the
pellets decreased would lever-press less than rats that did not have the reward
value of the pellets decreased, even without experiencing the devalued reward
as a result of lever-pressing. It turned out that the injected rats had
significantly lower response rates than the non-injected rats &lt;/span&gt;&lt;span
class=ArialUnicodeMSff6&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;right from the
start of the extinction trials.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Adams and Dickinson concluded
that the injected rats associated lever pressing with consequent nausea by
means of a cognitive map linking lever pressing to pellets, and pellets to
nausea. Hence, in the extinction trials, the rats \A1\B0knew\A1\B1 that the consequences
of pressing the lever would be something they did not want, and so they reduced
their lever-pressing right from the start. The important point is that they
reduced lever-pressing without ever having experienced lever-pressing directly
followed by being sick: no lever was present when they were made sick. They
seemed able to combine knowledge of the outcome of a behavioral choice
(pressing the lever will be followed by getting a pellet) with the reward value
of the outcome (pellets are to be avoided) and hence could alter their behavior
accordingly. Not every psychologist agrees with this \A1\B0cognitive\A1\B1 account of
this kind of experiment, and it is not the only possible way to explain these
results, but the model-based planning explanation is widely accepted.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Nothing prevents an agent from
using both model-free and model-based algo&amp;shy;rithms, and there are good reasons
for using both. We know from our own experience that with enough repetition,
goal-directed behavior tends to turn into habitual be&amp;shy;havior. Experiments show
that this happens for rats too. Adams (1982) conducted &lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection366&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;an experiment to see if extended training would convert
goal-directed behavior into habitual behavior. He did this by comparing the
effect of outcome devaluation on rats that experienced different amounts of
training. If extended training made the rats less sensitive to devaluation
compared to rats that received less training, this would be evidence that
extended training made the behavior more habitual. Adams\A1\AF exper&amp;shy;iment closely
followed the Adams and Dickinson (1981) experiment just described. Simplifying
a bit, rats in one group were trained until they made 100 rewarded lever-
presses, and rats in the other group\A1\AAthe overtrained group\A1\AAwere trained until
they made 500 rewarded lever-presses. After this training, the reward value of
the pel&amp;shy;lets was decreased (using lithium chloride injections) for rats in both
groups. Then both groups of rats were given a session of extinction training.
Adams\A1\AF question was whether devaluation would effect the rate of lever-pressing
for the overtrained rats less than it would for the non-overtrained rats, which
would be evidence that extended training reduces sensitivity to outcome
devaluation. It turned out that de&amp;shy;valuation strongly decreased the
lever-pressing rate of the non-overtrained rats. For the overtrained rats, in
contrast, devaluation had little effect on their lever-pressing; in fact, if
anything, it made it more vigorous. (The full experiment included con&amp;shy;trol
groups showing that the different amounts of training did not by themselves
significantly effect lever-pressing rates after learning.) This result
suggested that while the non-overtrained rats were acting in a goal-directed
manner sensitive to their knowledge of the outcome of their actions, the
overtrained rats had developed a lever-pressing habit.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Viewing this and other results like it from a computational perspective
provides insight as to why one might expect animals to behave habitually in
some circum&amp;shy;stances, in a goal-directed way in others, and why they shift from
one mode of control to another as they continue to learn. While animals
undoubtedly use algorithms that do not exactly match those we have presented in
this book, one can gain insight into animal behavior by considering the
tradeoffs that various reinforcement learning al&amp;shy;gorithms imply. An idea
developed by computational neuroscientists Daw, Niv, and Dayan (2005) is that
animals use both model-free and model-based processes. Each process proposes an
action, and the action chosen for execution is the one proposed by the process
judged to be the more trustworthy of the two as determined by mea&amp;shy;sures of
confidence that are maintained throughout learning. Early in learning the
planning process of a model-based system is more trustworthy because it chains
to&amp;shy;gether short-term predictions which can become accurate with less experience
than long-term predictions of the model-free process. But with continued
experience, the model-free process becomes more trustworthy because planning is
prone to mak&amp;shy;ing mistakes due to model inaccuracies and short-cuts necessary to
make planning feasible, such as various forms of tree-pruning. According to
this idea one would expect a shift from goal-directed behavior to habitual
behavior as more experience accumulates. Other ideas have been proposed for how
animals arbitrate between goal-directed and habitual control, and both
behavioral and neuroscience research continues to examine this and related
questions.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:28.1pt;
margin-left:1.0pt;text-indent:11.0pt;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The
distinction between model-free and model-based algorithms is proving to be
useful for this research. One can examine the computational implications of
these types of algorithms in abstract settings that expose basic advantages and
limitations of each type. This serves both to suggest and to sharpen questions
that guide the de&amp;shy;sign of experiments necessary for increasing psychologists\A1\AF
understanding of habitual and goal-directed behavioral control.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.05pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l95 level1 lfo74;tab-stops:45.65pt;background:transparent&#39;&gt;&lt;a
name=bookmark242&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;14.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Summary&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Our goal in
this chapter has been to discuss correspondences between reinforcement learning
and the experimental study of animal learning in psychology. We emphasized at
the outset that reinforcement learning as described in this book is not
intended to model details of animal behavior. It is an abstract computational
framework that explores idealized situations from the perspective of artificial
intelligence and engineering. But many of the basic reinforcement learning
algorithms were inspired by psychological theories, and in some cases, these
algorithms have contributed to the development of new animal learning models.
This chapter described the most conspicuous of these correspondences.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The distinction in reinforcement learning between algorithms for prediction
and algorithms for control parallels animal learning theory\A1\AFs distinction
between classi&amp;shy;cal, or Pavlovian, conditioning and instrumental conditioning.
The key difference between instrumental and classical conditioning experiments
is that in the former the reinforcing stimulus is contingent upon the animal\A1\AFs
behavior, whereas in the latter it is not. Learning to predict via a TD
algorithm corresponds to classical con&amp;shy;ditioning, and we described the &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;TD model of
classical conditioning&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;as one
instance in which reinforcement learning principles account for some details of
animal learning behavior. This model generalizes the influential
Rescorla-Wagner model by including the temporal dimension where events within
individual trials influence learning, and it provides an account of
second-order conditioning, where predictors of reinforcing stimuli become
reinforcing themselves. It also is the basis of an influential view of the
activity of dopamine neurons in the brain, something we take up in Chapter 15.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Learning by trial and error is at the base of the control aspect of
reinforcement learning. We presented some details about Thorndike\A1\AFs experiments
with cats and other animals that led to his &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;Law of Effect,&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;which we discussed here and in Chap&amp;shy;ter 1. We pointed
out that in reinforcement learning, exploration does not have to be limited to
\A1\B0blind groping\A1\B1; trials can be generated by sophisticated methods using innate
and previously learned knowledge as long as there is &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;some&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;exploration. We discussed the training method B. F.
Skinner called &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;shaping&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;in which reward contin&amp;shy;gencies are progressively altered to train an
animal to successively approximate a desired behavior. Shaping is not only
indispensable for animal training, it is also an effective tool for training
reinforcement learning agents. There is also a connection to the idea of an
animal\A1\AFs motivational state, which influences what an animal will approach or
avoid and what events are rewarding or punishing for the animal.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:8.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The reinforcement learning algorithms presented in this book include
two basic&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:12.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;mechanisms for
addressing the problem of delayed reinforcement: eligibility traces and value
functions learned via TD algorithms. Both mechanisms have antecedents in
theories of animal learning. Eligibility traces are similar to stimulus traces
of early theories, and value functions correspond to the role of secondary
reinforcement in providing nearly immediate evaluative feedback.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:12.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The next correspondence the chapter addressed is that between
reinforcement learning\A1\AFs environment models and what psychologists call &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;cognitive maps.&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; Exper&amp;shy;iments conducted in the mid 20th century purported to
demonstrate the ability of animals to learn cognitive maps as alternatives to,
or as additions to, state-action associations, and later use them to guide
behavior, especially when the environment changes unexpectedly. Environment
models in reinforcement learning are like cog&amp;shy;nitive maps in that they can be
learned by supervised learning methods without relying on reward signals, and
then they can be used later to plan behavior.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:12.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Reinforcement learning\A1\AFs distinction between &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;model-free&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; and &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;model-based&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; algo&amp;shy;rithms corresponds to the distinction in
psychology between &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;habitual&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; and &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;goal-directed
&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;behavior. Model-free algorithms
make decisions by accessing information that has been strored in a policy or an
action-value function, whereas model-based methods select actions as the result
of planning ahead using a model of the agent\A1\AFs envi&amp;shy;ronment.
Outcome-devaluation experiments provide information about whether an animal\A1\AFs
behavior is habitual or under goal-directed control. Reinforcement learning
theory has helped clarify thinking about these issues.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:12.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Animal learning clearly informs reinforcement learning, but as a
type of machine learning, reinforcement learning is directed toward designing
and understanding ef&amp;shy;fective learning algorithms, not toward replicating or
explaining details of animal behavior. We focused on aspects of animal learning
that relate in clear ways to methods for solving prediction and control
problems, highlighting the fruitful two&amp;shy;way flow of ideas between reinforcement
learning and psychology without venturing deeply into many of the behavioral
details and controversies that have occupied the attention of animal learning
researchers. Future development of reinforcement learn&amp;shy;ing theory and
algorithms will likely exploit links to many other features of animal learning
as the computational utility of these features becomes better appreciated. We
expect that a flow of ideas between reinforcement learning and psychology will
continue to bear fruit for both disciplines.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:12.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Many connections between reinforcement learning and areas of
psychology and other behavioral sciences are beyond the scope of this chapter.
We largely omit discussing links to the psychology of decision-making, which
focusses on how actions are selected, or how decisions are made, &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;after&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;
learning has taken place. We also do not discuss links to ecological and
evolutionary aspects of behavior studied by ethologists and behavioral
ecologists: how animals relate to one another and to their physical
surroundings, and how their behavior contributes to evolutionary fitness.
Optimization, MDPs, and dynamic programming figure prominently in these fields,
and our emphasis on agent interaction with dynamic environments connects to the
study of agent behavior in complex \A1\B0ecologies.\A1\B1 Multi-agent reinforcement
learning, omitted in this book, has connections to social aspects of behavior.
Despite the&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.35pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;lack of treatment here, reinforcement
learning should by no means be interpreted as dismissing evolutionary
perspectives. Nothing about reinforcement learning implies a &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;tabula rasa&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; view of learning and behavior. Indeed, experience with engineering
applications has highlighted the importance of building into reinforcement
learning systems knowledge that is analogous to what evolution provides to
animals.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.8pt;
margin-left:36.0pt;text-indent:-36.0pt;line-height:13.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a name=bookmark243&gt;&lt;span lang=EN-US&gt;Bibliographical
and Historical Remarks&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.0pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Ludvig, Bellemare, and Pearson
(2011) and Shah (2012) review reinforcement learn&amp;shy;ing in the contexts of
psychology and neuroscience. These publications are useful companions to this
chapter and the following chapter on reinforcement learning and neuroscience.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.0pt;
margin-left:36.0pt;text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l10 level1 lfo77;tab-stops:35.35pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;14.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Dayan, Niv,
Seymour, and Daw (2006) focused on interactions between clas&amp;shy;sical and instrumental
conditioning, particularly situations where classically- conditioned and
instrumental responses are in conflict. They proposed a Q- learning framework
for modeling aspects of this interaction. Modayil and Sut&amp;shy;ton (2014) used a
mobile robot to demonstrate the effectiveness of a control method combining a
fixed response with online prediction learning. Calling this &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;Pavlovian control&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;, they emphasized that it differs from the usual control methods of
reinforcement learning, being based on predictively executing fixed responses
and not on reward maximization. The electro-mechanical machine of Ross (1933)
and especially the learning version of Walter\A1\AFs tur&amp;shy;tle (Walter, 1951) were
very early illustrations of Pavlovian control. What is now called Pavlovian-instrumental
transfer was first observed by Estes (1943, 1948).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.0pt;
margin-left:36.0pt;text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l62 level1 lfo78;tab-stops:35.35pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;14.2.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Kamin (1968)
first reported blocking, now commonly known as Kamin block&amp;shy;ing, in classical
conditioning. Moore and Schmajuk (2008) provide an excel&amp;shy;lent summary of the
blocking phenomenon, the research it stimulated, and its lasting influence on
animal learning theory. Gibbs, Cool, Land, Kehoe, and Gormezano (1991) describe
second-order conditioning of the rabbit\A1\AFs nic&amp;shy;titating membrane response and
its relationship to conditioning with serial- compound stimuli. Finch and
Culler (1934) reported obtaining fifth-order conditioning of a dog\A1\AFs foreleg
withdrawal \A1\B0when the &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;motivation&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; of the ani&amp;shy;mal is maintained through the various
orders.\A1\B1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;text-indent:-36.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;mso-list:l62 level1 lfo78;tab-stops:35.35pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:Batang&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;14.2.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The idea built
into the Rescorla-Wagner model that learning occurs when animals are surprised
is derived from Kamin (1969). Models of classical conditioning other than
Rescorla and Wagner\A1\AFs include the models of Klopf (1988), Grossberg (1975),
Mackintosh (1975), Moore and Stickney (1980), Pearce and Hall (1980), and
Courville, Daw, and Touretzky (2006). Schmajuk (2008) review models of
classical conditioning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection367&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-indent:-35.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l62 level1 lfo78;tab-stops:36.5pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;14.2.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;An early
version of the TD model of classical conditioning appeared in Sut&amp;shy;ton and Barto
(1981), which also included the early model\A1\AFs prediction that temporal primacy
overrides blocking, later shown by Kehoe, Scheurs, and Graham (1987) to occur
in the rabbit nictitating membrane preparation. Sutton and Barto (1981)
contains the earliest recognition of the near identity between the
Rescorla-Wagner model and the Least-Mean-Square (LMS), or Widrow-Hoff, learning
rule (Widrow and Hoff, 1960). This early model was revised following Sutton\A1\AFs
development of the TD algorithm (Sutton, 1984, 1988) and was first presented as
the TD model in Sutton and Barto (1987) and more completely in Sutton and Barto
(1990), upon which this section is largely based. Additional exploration of the
TD model and its possible neural implementation was conducted by Moore and
colleagues (Moore, Desmond, Berthier, Blazis, Sutton, and Barto, 1986; Moore
and Blazis, 1989; Moore, Choi, and Brunzell, 1998; Moore, Marks, Castagna, and
Polewan, 2001). Klopf\A1\AFs (1988) drive-reinforcement theory of classical
conditioning extends the TD model to address additional experimental details,
such as the S- shape of acquisition curves. In some of these publications TD is
taken to mean Time Derivative instead of Temporal Difference.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-indent:-35.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l62 level1 lfo78;tab-stops:36.5pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;14.2.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Ludvig, Sutton,
and Kehoe (2012) evaluated the performance of the TD model in previously
unexplored tasks involving classical conditioning and examined the influence of
various stimulus representations, including the mi&amp;shy;crostimulus representation
that they introduced earlier (Ludvig, Sutton, and Kehoe, 2008). Earlier
investigations of the influence of various stimulus repre&amp;shy;sentations and their
possible neural implementations on response timing and topography in the
context of the TD model are those of Moore and colleagues cited above. Although
not in the context of the TD model, representations like the microstimulus
representation of Ludvig et al. (2012) have been pro&amp;shy;posed and studied by Grossberg
and Schmajuk (1989), Brown, Bullock, and Grossberg (1999), Buhusi and Schmajuk
(1999), and Machado (1997).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:7.35pt;
margin-left:36.0pt;text-indent:-35.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l7 level1 lfo79;tab-stops:36.5pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;14.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Section 1.7
includes comments on the history of trial-and-error learning and the Law of
Effect. The idea that Thorndikes cats might have been exploring according to an
instinctual context-specific ordering over actions rather than by just
selecting from a set of instinctual impulses was suggested by Peter Dayan
(personal communication). Selfridge, Sutton, and Barto (1985) illus&amp;shy;trated the
effectiveness of shaping in a pole-balancing reinforcement learning task. Other
examples of shaping in reinforcement learning are Gullapalli and Barto (1992),
Mahadevan and Connell (1992), Mataric (1994), Dorigo and Colombette (1994),
Saksida, Raymond, and Touretzky (1997), and Randl&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;v and Alstr&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;m (1998). Ng (2003) and Ng, Harada, and Russell (1999) used the term
shaping in a sense somewhat different from Skinner\A1\AFs, focussing on the problem
of how to alter the reward signal without altering the set of optimal policies.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=right style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:
0cm;margin-left:0cm;margin-bottom:.0001pt;text-align:right;line-height:8.0pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Dickinson and Balleine (2002) discuss the complexity of the
interaction be-&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:21.0pt;margin-bottom:12.0pt;
margin-left:37.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;tween learning and motivation.
Wise (2004) provides an overview of rein&amp;shy;forcement learning and its relation to
motivation. Daw and Shohamy (2008) link motivation and learning to aspects of
reinforcement learning theory. See also McClure, Daw, and Montague (2003), Niv,
Joel, and Dayan (2006), Rangel et al. (2008), and Dayan and Berridge (2014).
McClure et al. (2003), Niv, Daw, and Dayan (2005), and Niv, Daw, Joel, and Dayan
(2007) present theories of behavioral vigor related to the reinforcement
learning framework.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:21.0pt;margin-bottom:12.0pt;
margin-left:37.0pt;text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l38 level1 lfo80;tab-stops:36.7pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;14.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Spence, Hull\A1\AFs
student and collaborator at Yale, elaborated the role of higher- order
reinforcement in addressing the problem of delayed reinforcement (Spence,
1947). Learning over very long delays, as in taste-aversion conditioning with
delays up to several hours, led to interference theories as alternatives to
decaying-trace theories (e.g., Revusky and Garcia, 1970; Boakes and Costa,
2014). Other views of learning under delayed reinforcement invoke roles for
awareness and working memory (e.g., Clark and Squire, 1998; Seo, Barra- clough,
and Lee, 2007).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:21.0pt;margin-bottom:12.0pt;
margin-left:37.0pt;text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l38 level1 lfo80;tab-stops:36.7pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;14.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Thistlethwaite
(1951) is an extensive review of latent learning experiments up to the time of
its publication. Ljung (1998) is an overview of model learning, or system
identification, techniques in engineering. Gopnik, Glymour, Sobel, Schulz,
Kushnir, and Danks (2004) present a Bayesian theory about how children learn
models.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:21.0pt;margin-bottom:12.0pt;
margin-left:37.0pt;text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l38 level1 lfo80;tab-stops:36.7pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;14.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Connections
between habitual and goal-directed behavior and model-free and model-based
reinforcement learning were first proposed by Daw, Niv, and Dayan (2005). The
hypothetical maze task used to explain habitual and goal-directed behavioral
control is based on the explanation of Niv, Joel, and Dayan (2006). Dolan and
Dayan (2013) review four generations of experi&amp;shy;mental research related to this
issue and discuss how it can move forward on the basis of reinforcement
learning\A1\AFs model-free/model-based distinction. Dickinson (1980, 1985) and Dickinson
and Balleine (2002) discuss exper&amp;shy;imental evidence related to this distinction.
Donahoe and Burgos (2000) alternatively argue that model-free processes can
account for the results of outcome-devaluation experiments. Dayan and Berridge
(2014) argue that classical conditioning involves model-based processes.
Rangel, Camerer, and Montague (2008) review many of the outstanding issues
involving habitual, goal-directed, and Pavlovian modes of control.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:21.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=21Batang&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;Comments on Terminology&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;\A1\AA The traditional meaning of &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span
lang=EN-US&gt;reinforcement&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; in psy&amp;shy;chology
is the strengthening of a pattern of behavior (by increasing either its
intensity or frequency) as a result of an animal receiving a stimulus (or
experiencing the omis&amp;shy;sion of a stimulus) in an appropriate temporal
relationship with another stimulus or with a response. Reinforcement produces
changes that remain in future behavior. Sometimes in psychology reinforcement
refers to the process of producing lasting changes in behavior, whether the
changes strengthen or weaken a behavior pattern&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;(Mackintosh,
1983). Letting reinforcement refer to weakening in addition to strength&amp;shy;ening
is at odds with the everyday meaning of reinforce, and its traditional use in
psychology, but it is a useful extension that we have adopted here. In either case,
a stimulus considered to be the cause of the behavioral change is called a &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;reinforcer.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Psychologists do not generally use the specific phrase &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;reinforcement
learning&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;as we do. Animal
learning pioneers probably regarded reinforcement and learning as being
synonymous, so it would be redundant to use both words. Our use of the phrase
follows its use in computational and engineering research, influenced mostly by
Minsky (1961). But the phrase is lately gaining currency in psychology and
neuroscience, likely because strong parallels have surfaced between
reinforcement learning algorithms and animal learning\A1\AAparallels described in
this chapter and the next.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;According to common usage, a &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;reward&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;is an object or event that an animal will approach
and work for. A reward may be given to an animal in recognition of its \A1\AEgood\A1\AF
behavior, or given in order to make the animal\A1\AFs behavior \A1\AEbetter.\A1\AF Similarly,
a &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;penalty&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;is an object or event that the animal usually avoids and that is
given as a consequence of \A1\AEbad\A1\AF behavior, usually in order to change that
behavior. &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;Primary reward&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;is reward due to machinery built into an animal\A1\AFs nervous system by
evolution to improve its chances of survival and reproduction, e.g., reward
produced by the taste of nourishing food, sexual contact, successful escape,
and many other stimuli and events that predicted reproductive success over the
animal\A1\AFs ancestral history. As explained in Section 14.2.1, &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;higher-order
reward&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;is reward delivered by
stimuli that predict primary reward, either directly or indirectly by
predicting other stimuli that predict primary reward. Reward is &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;secondary&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;if its rewarding quality is the result of directly
predicting primary reward.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;mso-list:l45 level1 lfo81;tab-stops:18.7pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;I&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;this book we call &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span
lang=EN-US&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; the \A1\AEreward signal
at time &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; or sometimes just the \A1\AEreward at time V,\A1\AF but we do
not think of it as an object or event in the agent\A1\AFs environment. Because R is
a number\A1\AAnot an object or an event\A1\AAit is more like a reward signal in
neuroscience, which is a signal internal to the brain, like the activity of
neurons, that influences decision making and learning. This signal might be
triggered when the animal perceives an attractive (or an aversive) object, but
it can also be triggered by things that do not physically exist in the animal\A1\AFs
external environment, such as memories, ideas, or hallucinations. Because our &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; can
be positive, negative, or zero, it might be better to call a negative R a
penalty, and an R equal to zero a neutral signal, but for simplicity we
generally avoid these terms.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;In reinforcement learning, the process that generates all theR^s
defines the problem the agent is trying to solve. The agent\A1\AFs objective is to
keep the magnitude of R as large as possible over time. In this respect, R is
like primary reward for an animal if we think of the problem the animal faces
as the problem of obtaining as much primary reward as possible over its
lifetime (and thereby, through the prospective \A1\B0wisdom\A1\B1 of evolution, improve
its chances of solving its real problem, which is to pass its genes on to
future generations. However, as we suggest in Chapter 15, it is unlikely that
there is a single \A1\B0master\A1\B1 reward signal like &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span
lang=EN-US&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; in an animal\A1\AFs
brain.)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:8.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;Not all reinforcers are rewards or penalties.
Sometimes reinforcement is not the result of an animal receiving a stimulus
that evaluates its behavior by labeling the behavior good or bad. A behavior
pattern can be reinforced by a stimulus that arrives to an animal no matter how
the animal behaved. As described in Section 14.1, whether the delivery of
reinforcer depends, or does not depend, on preceding behavior is the defining
difference between instrumental, or operant, conditioning experiments and
classical, or Pavlovian, conditioning experiments. Reinforcement is at work in
both types of experiments, but only in the former is it feedback that evaluates
past behavior. (Though It has often been pointed out that even when the
reinforcing US in a classical conditioning experiment is not contingent on the
subject\A1\AFs preceding behavior, its reinforcing value can be influenced by this behavior,
an example being that a closed eye makes an air puff to the eye less aversive.)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;The distinction between reward signals and
reinforcement signals is a crucial point when we discuss neural correlates of
these signals in the next chapter. Like a reward signal, for us, the
reinforcement signal at any specific time is a positive or negative number, or
zero. A reinforcement signal is the major factor directing changes a learn&amp;shy;ing
algorithm makes in an agent\A1\AFs policy, value estimates, or environment models.
The definition that makes the most sense to us is that a reinforcement signal
at any time is a number that multiplies (possibly along with some constants) a
vector to determine parameter updates in some learning algorithm.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;For some algorithms, the reward signal alone is the
critical multiplier in the parameter-update equation. For these algorithms the
reinforcement signal is the same as the reward signal. But for most of the
algorithms we discuss in this book, reinforcement signals include terms in addition
to the reward signal, an example being a TD error &lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU&gt;&lt;span style=&#39;font-size:9.0pt&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;=Rt&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;V(St&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;) \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;(St), which is the reinforcement signal for TD
state-value learning (and analogous TD errors for action-value learning). In
this reinforcement signal, Rt&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;is the &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;primary reinforcement&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; contribution, and the temporal difference in
predicted values, &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;V(St&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;) \A1\AA V(St) (or an analogous temporal difference for
action values), is the &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;conditioned
reinforcement&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; contribution.
Thus, whenever &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;V(St&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;) \A1\AA V(St) = 0, &amp;amp; signals \A1\AEpure\A1\AF primary reinforcement;
and when&amp;shy;ever Rt&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;= 0,
it signals \A1\AEpure\A1\AF conditioned reinforcement, but it often signals a mixture of
these. Note as we mentioned in Section 6.1, this &lt;/span&gt;&amp;#12316;&lt;span lang=EN-US&gt;is
not available until time &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; + 1. We therefore think of &lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU&gt;&lt;span style=&#39;font-size:9.0pt;mso-ansi-language:EN-US&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;as the reinforcement signal at time &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; +
1, which is fitting because it reinforces predictions and/or actions made
earlier at step t.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;A possible source of confusion is the terminology
used by the famous psycholo&amp;shy;gist B.F. Skinner and his followers. For Skinner,
positive reinforcement occurs when the consequences of an animal\A1\AFs behavior
increase the frequency of that behavior; punishment occurs when the behavior\A1\AFs
consequences decrease that behavior\A1\AFs fre&amp;shy;quency. Negative reinforcement occurs
when behavior leads to the removal of an aversive stimulus (that is, a stimulus
the animal does not like), thereby increasing the frequency of that behavior.
Negative punishment, on the other hand, occurs when behavior leads to the
removal of an appetitive stimulus (that is, a stimulus the animal likes),
thereby decreasing the frequency of that behavior. We find no critical need for
these distinctions because our approach is more abstract than this, with both
reward and reinforcement signals allowed to take on both positive and negative &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection368&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;values. (But note especially that when our
reinforcement signal is negative, it is not the same as Skinner\A1\AFs negative
reinforcement.)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;On the other hand, it has often been pointed out that using a single
number as a reward or a penalty signal, depending only on its sign, is at odds
with the fact that animals\A1\AF appetitive and aversive systems have qualitatively
different properties and involve different brain mechanisms. This points to a
direction in which the reinforce&amp;shy;ment learning framework might be developed in
the future to exploit computational advantages of separate appetitive and
aversive systems, but for now we are passing over these possibilities.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Another discrepancy in terminology is how we use the word &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;action&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;. To many cognitive scientists, an action is purposeful in the sense
of being the result of an animal\A1\AFs knowledge about the relationship between the
behavior in question and the consequences of that behavior. An action is
goal-directed and the result of a decision, in contrast to a response, which is
triggered by a stimulus; the result of a reflex or a habit. We use the word
action without differentiating among what others call actions, decisions, and
responses. These are important distinctions, but for us they are encompassed by
differences between model-free and model-based reinforcement learning
algorithms, which we discussed above in relation to habitual and goal-directed
behavior in Section 14.6. Dickinson (1985) discusses the distinction between
responses and actions.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;A term used a lot in this book is &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span
lang=EN-US&gt;control&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;. What we mean
by control is entirely different from what it means to animal learning
psychologists. By control we mean that an agent influences its environment to
bring about states or events that the agent prefers: the agent exerts control
over its environment. This is the sense of control used by control engineers.
In psychology, on the other hand, control typically means that an animal\A1\AFs
behavior is influenced by\A1\AAis controlled by\A1\AAthe stimuli the animal receives
(stimulus control) or the reinforcement schedule it experiences. Here the
environment is controlling the agent. Control in this sense is the basis of
behavior modification therapy. Of course, both of these directions of control
are at play when an agent interacts with its environment, but our focus is on
the agent as controller; not the environment as controller. A view equivalent
to ours, and perhaps more illuminating, is that the agent is actually
controlling the input it receives from its environment (Powers, 1973). This is &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;not&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;
what psychologists mean by stimulus control.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Sometimes reinforcement learning is understood to refer solely to
learning policies directly from rewards (and penalties) without the involvement
of value functions or environment models. This is what psychologists call
stimulus-response, or S&amp;shy;R, learning. But for us, along with most of today\A1\AFs
psychologists, reinforcement learning is much broader than this, including in
addition to S-R learning, methods involving value functions, environment
models, planning, and other processes that are commonly thought to belong to
the more cognitive side of mental functioning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=208 style=&#39;text-align:justify;text-justify:inter-ideograph;line-height:
8.0pt;mso-line-height-rule:exactly;tab-stops:right 294.95pt 311.5pt 400.3pt;
background:transparent&#39;&gt;&lt;span class=207&gt;&lt;span lang=ZH-TW style=&#39;font-style:
normal&#39;&gt;392&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=201&gt;&lt;span lang=EN-US&gt;CHAPTER&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;14.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;PSYCHOLOGY&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;i&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/i&gt;&lt;/p&gt;

&lt;div class=WordSection369&gt;

&lt;p class=8a style=&#39;margin-bottom:29.1pt;line-height:19.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=84&gt;&lt;span lang=EN-US&gt;Chapter 15&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=833 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:37.75pt;
margin-left:0cm;line-height:22.0pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark244&gt;&lt;span lang=EN-US&gt;Neuroscience&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Neuroscience
is the multidisciplinary study of nervous systems: how they regulate bodily
functions; control behavior; change over time as a result of development,
learning, and aging; and how cellular and molecular mechanisms make these
functions possible. One of the most exciting aspects of reinforcement learning
is the mounting evidence from neuroscience that the nervous systems of humans
and many other animals implement algorithms that correspond in striking ways to
reinforcement learning algorithms. The main objective of this chapter is to
explain these parallels and what they suggest about the neural basis of
reward-related learning in animals.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The most remarkable point of contact between reinforcement learning
and neuro&amp;shy;science involves dopamine, a chemical deeply involved in reward
processing in the brains of mammals. Dopamine appears to convey
temporal-difference (TD) errors to brain structures where learning and decision
making take place. This parallel is expressed by the &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;reward prediction error hypothesis of dopamine
neuron activity,&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; a hy&amp;shy;pothesis
that resulted from the convergence of computational reinforcement learning and
results of neuroscience experiments. In this chapter we discuss this
hypothesis, the neuroscience findings that led to it, and why it is a
significant contribution to un&amp;shy;derstanding brain reward systems. We also
discuss parallels between reinforcement learning and neuroscience that are less
striking than this dopamine/TD-error parallel but that provide useful
conceptual tools for thinking about reward-based learning in animals. Other
elements of reinforcement learning have the potential to impact the study of
nervous systems, but their connections to neuroscience are still relatively
undeveloped. We discuss several of these evolving connections that we think
will grow in importance over time.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;As we outlined
in the history section of this book\A1\AFs introductory chapter (Sec&amp;shy;tion 1.7), many
aspects of reinforcement learning were influenced by neuroscience. A second
objective of this chapter is to acquaint readers with ideas about brain
function that have contributed to our approach to reinforcement learning. Some
elements of reinforcement learning are easier to understand when seen in light
of theories of brain function. This is particularly true for the idea of the
eligibility trace, one of the ba&amp;shy;sic mechanisms of reinforcement learning, that
originated as a conjectured property of synapses, the structures by which nerve
cells\A1\AAneurons\A1\AAcommunicate with one another.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;In this chapter we do not delve very deeply into the enormous
complexity of the neural systems underlying reward-based learning in animals:
this chapter too short, and we are not neuroscientists. We do not try to
describe\A1\AAor even to name\A1\AAthe very many brain structures and pathways, or any of
the molecular mechanisms, be&amp;shy;lieved to be involved in these processes. We also
do not do justice to hypotheses and models that are alternatives to those that
align so well with reinforcement learning. It should not be surprising that
there are differing views among experts in the field. We can only provide a
glimpse into this fascinating and developing story. We hope, though, that this
chapter convinces you that a very fruitful channel has emerged con&amp;shy;necting reinforcement
learning and its theoretical underpinnings to the neuroscience of reward-based
learning in animals.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:27.35pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Many excellent
publications cover links between reinforcement learning and neu&amp;shy;roscience, some
of which we cite in this chapter\A1\AFs final section. Our treatment differs from
most of these because we assume familiarity with reinforcement learning as
presented in the earlier chapters of this book, but we do not assume knowledge
of neuroscience. We begin with a brief introduction to the neuroscience concepts
needed for a basic understanding of what is to follow.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l92 level1 lfo82;tab-stops:44.4pt;background:transparent&#39;&gt;&lt;a
name=bookmark245&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;15.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Neuroscience Basics&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Some basic
information about nervous systems is helpful for following what we cover in
this chapter. Terms that we refer to later are italicized. Skipping this
section will not be a problem if you already have an elementary knowledge of
neuroscience.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;Neurons,&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;the main components of nervous systems, are cells
specialized for pro&amp;shy;cessing and transmitting information using electrical and
chemical signals. They come in many forms, but a neuron typically has a cell
body, &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;dendrites&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;, and a single &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;axon.&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Dendrites are structures that branch from the cell body to receive
input from other neurons (or to also receive external signals in the case of
sensory neurons). A neuron\A1\AFs axon is a fiber that carries the neuron\A1\AFs output
to other neurons (or to muscles or glands). A neuron\A1\AFs output consists of
sequences of electrical pulses called &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;action
potentials&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;that
travel along the axon. Action potentials are also called &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;spikes, &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;and a neuron is said to &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;fire&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;when it generates a spike. In models of neural
networks it is common to use real numbers to represent a neuron\A1\AFs &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;firing rate&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;, the average number of spikes per some unit of
time.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;A neuron\A1\AFs axon can branch widely so that the neuron\A1\AFs action potentials
reach many targets. The branching structure of a neuron\A1\AFs axon is called the
neuron\A1\AFs &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;axonal arbor&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;. Because the conduction of an action potential is an active
process, not unlike the burning of a fuse, when an action potential reaches an
axonal branch point it \A1\B0lights up\A1\B1 action potentials on all of the outgoing
branches (although propagation to a branch can sometimes fail). As a result,
the activity of a neuron with a large axonal arbor can influence many target
sites.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;A &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;synapse&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;is a structure generally at the termination of an axon branch that
medi&amp;shy;ates the communication of one neuron to another. A synapse transmits
information from the &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;presynaptic&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;neuron\A1\AFs axon to a dendrite or cell body of the &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;postsynaptic &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;neuron. With a few exceptions, synapses release a
chemical &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;neurotransmitter&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;upon the arrival of an action potential from the presynaptic neuron.
(The exceptions are cases of direct electric coupling between neurons, but
these will not concern us here.) Neurotransmitter molecules released from the presynaptic
side of the synapse diffuse across the &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;synaptic cleft&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;, the very small space between the presynaptic
ending and the postsynaptic neuron, and then bind to receptors on the surface
of the postsy- naptic neuron to excite or inhibit its spike-generating
activity, or to modulate its behavior in other ways. A particular
neurotransmitter may bind to several different types of receptors, with each
producing a different effect on the postsynaptic neuron. For example, there are
at least five different receptor types by which the neurotrans&amp;shy;mitter dopamine
can affect a postsynaptic neuron. Many different chemicals have been identified
as neurotransmitters in animal nervous systems.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;A neuron\A1\AFs &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;background&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;activity is its level of activity, usually its
firing rate, when the neuron does not appear to be driven by synaptic input
related to the task of in&amp;shy;terest to the experimenter, for example, when the
neuron\A1\AFs activity is not correlated with a stimulus delivered to a subject as
part of an experiment. Background activity can be irregular due to input from
the wider network, or due to noise within the neu&amp;shy;ron or its synapses.
Sometimes background activity is the result of dynamic processes intrinsic to
the neuron. A neuron\A1\AFs &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;phasic&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;activity, in contrast to its background ac&amp;shy;tivity, consists of
bursts of spiking activity usually caused by synaptic input. Activity that
varies slowly and often in a graded manner, whether as background activity or
not, is called a neuron\A1\AFs &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;tonic&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batange&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;activity.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The strength or effectiveness by which the neurotransmitter released
at a synapse influences the postsynaptic neuron is the synapse\A1\AFs &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;efficacy.&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batange&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;One way a nervous system can change through
experience is through changes in synaptic efficacies as a result of
combinations of the activities of the presynaptic and postsynaptic neurons, and
sometimes by the presence of a &lt;/span&gt;&lt;/span&gt;&lt;span class=21ArialUnicodeMS3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;neuromodulator&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;, which is a neurotransmitter having effects other than, or in
addition to, direct fast excitation or inhibition.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Brains contain several different neuromodulation systems consisting
of clusters of neurons with widely branching axonal arbors, with each system
using a different neu&amp;shy;rotransmitter. Neuromodulation can alter the function of
neural circuits, mediate motivation, arousal, attention, memory, mood, emotion,
sleep, and body tempera&amp;shy;ture. Important here is that a neuromodulatory system
can distribute something like a scalar signal, such as a reinforcement signal,
to alter the operation of synapses in widely distributed sites critical for
learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The ability of synaptic efficacies to change is called &lt;/span&gt;&lt;/span&gt;&lt;span
class=21ArialUnicodeMS3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;synaptic
plasticity&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;. It is one of the
primary mechanisms responsible for learning. The parameters, or weights,
adjusted by learning algorithms correspond to synaptic efficacies. As we detail
below, modulation of synaptic plasticity via the neuromodulator dopamine is a
plausible mechanism for how the brain might implement learning algorithms like
many of those described in this book.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 align=left style=&#39;margin-top:0cm;margin-right:18.0pt;margin-bottom:
15.65pt;margin-left:45.0pt;text-align:left;line-height:18.0pt;mso-line-height-rule:
exactly;mso-list:l92 level1 lfo82;tab-stops:44.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark246&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;15.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Reward Signals, Reinforcement
Signals, Values, and Prediction Errors&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:18.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Links between neuroscience
and computational reinforcement learning begin as paral&amp;shy;lels between signals in
the brain and signals playing prominent roles in reinforcement learning theory
and algorithms. In Chapter 3 we said that any problem of learn&amp;shy;ing
goal-directed behavior can be reduced to the three signals representing
actions, states, and rewards. However, to explain links that have been made
between neuro&amp;shy;science and reinforcement learning, we have to be less abstract
than this and consider other reinforcement learning signals that correspond, in
certain ways, to signals in the brain. In addition to reward signals, these
include reinforcement signals (which we argue are different from reward
signals), value signals, and signals conveying pre&amp;shy;diction errors. When we label
a signal by its function in this way, we are doing it in the context of
reinforcement learning theory in which the signal corresponds to a term in an
equation or an algorithm. On the other hand, when we refer to a signal in the
brain, we mean a physiological event such as a burst of action potentials or
the secretion of a neurotransmitter. Labeling a neural signal by its function,
for example calling the phasic activity of a dopamine neuron a reinforcement
signal, means that the neural signal behaves like, and is conjectured to
function like, the corresponding theoretical signal.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:18.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Uncovering evidence for these correspondences involves many
challenges. Neu&amp;shy;ral activity related to reward processing can be found in
nearly every part of the brain, and it is difficult to interpret results
unambiguously because representations of different reward-related signals tend
to be highly correlated with one another. Experiments need to be carefully
designed to allow one type of reward-related signal to be distinguished with
any degree of certainty from others\A1\AAor from an abundance of other signals not
related to reward processing. Despite these difficulties, many experiments have
been conducted with the aim of reconciling aspects of reinforce&amp;shy;ment learning
theory and algorithms with neural signals, and some compelling links have been
established. To prepare for examining these links, in the rest of this sec&amp;shy;tion
we remind the reader of what various reward-related signals mean according to
reinforcement learning theory.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:18.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;In our Comments on Terminology at the end of the previous chapter,
we said that Rt is like a reward signal in an animal\A1\AFs brain and not as an
object or event in the animal\A1\AFs environment. In reinforcement learning, the
reward signal (along with an agent\A1\AFs environment) defines the problem a
reinforcement learning agent is trying to solve. It this respect, Rt is like a
signal in an animal\A1\AFs brain that distributes primary reward to sites throughout
the brain. But it is unlikely that a unitary master reward signal like Rt
exists in an animal\A1\AFs brain. It is best to think of Rt as an abstraction
summarizing the overall effect of a multitude of neural signals generated by
many systems in the brain that assess the rewarding or punishing qualities of
sensations and states.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:18.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=211&gt;&lt;span
lang=EN-US&gt;Reinforcement signals&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;
in reinforcement learning are different from reward signals. The function of a
reinforcement signal is to direct the changes a learning algo-&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection370&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;rithm makes in an agent\A1\AFs policy, value estimates, or environment
models. For a TD method, for instance, the reinforcement signal at time V is
the TD error &lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;span
lang=EN-US&gt;_i = Rt + &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;V(St) \A1\AA
&lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;(St&lt;sub&gt;-&lt;/sub&gt;i).&lt;a style=&#39;mso-footnote-id:ftn29&#39; href=&#34;#_ftn29&#34;
name=&#34;_ftnref29&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=210&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[29]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;
The reinforcement signal for some algorithms could be just the reward signal,
but for most of the algorithms we consider the reinforce&amp;shy;ment signal is the
reward signal adjusted by other information, such as the value estimates in TD
errors.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;Estimates of state values or of action values, that
is, V or Q, specify what is good or bad for the agent over the long run. They
are predictions of the total reward an agent can expect to accumulate over the
future. Agents make good decisions by selecting actions leading to states with
the largest estimated state values, or by selecting actions with the largest
estimated action values.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;Prediction errors measure discrepancies between
expected and actual signals or sensations. Reward prediction errors (RPEs)
specifically measure discrepancies be&amp;shy;tween the expected and the received
reward signal, being positive when the reward signal is greater than expected,
and negative otherwise. TD errors like (6.5) are spe&amp;shy;cial kinds RPEs that
signal discrepancies between current and earlier expectations of reward over
the long-term. When neuroscientists refer to RPEs they generally (though not
always) mean TD RPEs, which we simply call TD errors throughout this chapter.
Also in this chapter, a TD error is generally one that does not depend on
actions, as opposed to TD errors used in learning action-values by algorithms
like Sarsa and Q-learning. This is because the most well-known links to
neuroscience are stated in terms of action-free TD errors, but we do not mean
to rule out possible similar links involving action-dependent TD errors. (TD
errors for predicting signals other than rewards are useful too, but that case
will not concern us here. See, for example, Modayil, White, and Sutton, 2014.)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:11.0pt;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;One can ask many questions about links between
neuroscience data and these theoretically-defined signals. Is an observed
signal more like a reward signal, a value signal, a prediction error, a
reinforcement signal, or something altogether different? And if it is an error
signal, is it an RPE, a TD error, or a simpler error like the Rescorla-Wagner
error (14.3)? And if it is a TD error, does it depend on actions like the TD
error of Q-learning or Sarsa? As indicated above, probing the brain to answer
questions like these is extremely difficult. But experimental evidence suggests
that one neurotransmitter, specifically the neurotransmitter dopamine, signals
RPEs, and further, that the phasic activity of dopamine-producing neurons in
fact conveys TD errors (see Section 15.1 for a definition of phasic activity).
This evidence led to the &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;reward
prediction error hypothesis of dopamine neuron activity&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;, which we describe next.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection371&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l92 level1 lfo82;tab-stops:45.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark247&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;15.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;The Reward Prediction Error
Hypothesis&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;The &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;reward prediction error hypothesis of dopamine neuron
activity&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; proposes that one of
the functions of the phasic activity of dopamine-producing neurons in mammals
is to deliver an error between an old and a new estimate of expected future
reward to target areas throughout the brain. This hypothesis (though not in
these exact words) was first explicitly stated by Montague, Dayan, and
Sejnowski (1996), who showed how the TD error concept from reinforcement
learning accounts for many features of the phasic activity of dopamine neurons
in mammals. The experiments that led to this hypothesis were performed in the
1980s and early 1990s in the laboratory of neuroscientist Wolfram Schultz.
Section 15.5 describes these influential experiments, Section 15.6 explains how
the results of these experiments align with TD errors, and the Bibliographical
and Historical Remarks section at the end of this chapter includes a guide to
the literature surrounding the development of this influential hypothesis.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Montague et al. (1996) compared the TD errors of the TD model of
classical con&amp;shy;ditioning with the phasic activity of dopamine-producing neurons
during classical conditioning experiments. Recall from Section 14.2 that the TD
model of classi&amp;shy;cal conditioning is basically the semi-gradient-descent TD(A)
algorithm with linear function approximation. Montague et al. made several
assumptions to set up this comparison. First, since a TD error can be negative
but neurons cannot have a neg&amp;shy;ative firing rate, they assumed that the quantity
corresponding to dopamine neuron activity is &amp;amp;_i + bt, where bt is the
background firing rate of the neuron. A neg&amp;shy;ative TD error corresponds to a
drop in a dopamine neuron\A1\AFs firing rate below its background rate.&lt;a
style=&#39;mso-footnote-id:ftn30&#39; href=&#34;#_ftn30&#34; name=&#34;_ftnref30&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=210&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[30]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;A second assumption was needed about the states visited in each
classical condi&amp;shy;tioning trial and how they are represented as inputs to the
learning algorithm. This is the same issue we discussed in Section 14.2.4 for
the TD model. Montague et al. chose a complete serial compound &lt;/span&gt;&lt;/span&gt;&lt;span
class=21f1&gt;&lt;span lang=EN-US&gt;(CSC)&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt; representation as shown in the left column of Figure 14.2, but
where the sequence of short-duration internal signals continues until the onset
of the US, which here is the arrival of a non-zero reward signal. This
representation allows the TD error to mimic the fact that dopamine neuron activ&amp;shy;ity
not only predicts a future reward, but that it is also sensitive to &lt;/span&gt;&lt;/span&gt;&lt;span
class=211&gt;&lt;span lang=EN-US&gt;when&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;
after a predictive cue that reward is expected to arrive. There has to be some
way to keep track of the time between sensory cues and the arrival of reward.
If a stimulus ini&amp;shy;tiates a sequence of internal signals that continues after
the stimulus ends, and if there is a different signal for each time step
following the stimulus, then each time step after the stimulus is represented
by a distinct state. Thus, the TD error, being state-dependent, can be
sensitive to the timing of events within a trial.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;In simulated trials with these assumptions about background firing
rate and input representation, TD errors of the TD model are remarkably similar
to dopamine neu&amp;shy;ron phasic activity. Previewing our description of details
about these similarities in Section 15.5 below, the TD errors parallel the
following features of dopamine neuron activity: 1) the phasic response of a
dopamine neuron only occurs when a rewarding event is unpredicted; 2) early in
learning, neutral cues that precede a reward do not cause substantial phasic
dopamine responses, but with continued learning these cues gain predictive
value and come to elicit phasic dopamine responses; 3) if an even ear&amp;shy;lier cue
reliably precedes a cue that has already acquired predictive value, the phasic
dopamine response shifts to the earlier cue, ceasing for the later cue; and 3)
if after learning, the predicted rewarding event is omitted, a dopamine
neuron\A1\AFs response decreases below its baseline level shortly after the expected
time of the rewarding event.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Although not every dopamine neuron monitored in the experiments of
Schultz and colleagues behaved in all of these ways, the striking
correspondence between the activities of most of the monitored neurons and TD
errors lends strong support to the reward prediction error hypothesis. There
are situations, however, in which predictions based on the hypothesis do not
match what is observed in experiments. The choice of input representation is
critical to how closely TD errors match some of the details of dopamine neuron
activity, particularly details about the timing of dopamine neuron responses.
Different ideas, some of which we discuss below, have been proposed about input
representations and other features of TD learning to make the TD errors fit the
data better, though the main parallels appear with the CSC representation that
Montague et al. used. Overall, the reward prediction error hy&amp;shy;pothesis has
received wide acceptance among neuroscientists studying reward-based learning,
and it has proven to be remarkably resilient in the face of accumulating
results from neuroscience experiments.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;To prepare for
our description of the neuroscience experiments supporting the re&amp;shy;ward
prediction error hypothesis, and to provide some context so that the
significance of the hypothesis can be appreciated, we next present some of what
is known about dopamine, the brain structures it influences, and how it is
involved in reward-based learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l92 level1 lfo82;tab-stops:44.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark248&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;15.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Dopamine&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Dopamine is
produced as a neurotransmitter by neurons whose cell bodies lie mainly in two
clusters of neurons in the midbrain of mammals: the substantia nigra pars
compacta (SNpc) and the ventral tegmental area (VTA). Dopamine plays essen&amp;shy;tial
roles in many processes in the mammalian brain. Prominent among these are
motivation, learning, action-selection, most forms of addiction, and the
disorders schizophrenia and Parkinson\A1\AFs disease. Dopamine is called a
neuromodulator be&amp;shy;cause it performs many functions other than direct fast excitation
or inhibition of targeted neurons. Although much remains unknown about
dopamine\A1\AFs functions and details of its cellular effects, it is clear that it
is fundamental to reward processing in the mammalian brain. Dopamine is not the
only neuromodulator involved in reward processing, and its role in aversive
situations\A1\AApunishment\A1\AAremains controversial. Dopamine also can function
differently in non-mammals. But no one doubts that dopamine is essential for
reward-related processes in mammals, including humans.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;An early, traditional view is that dopamine neurons broadcast a
reward signal to multiple brain regions implicated in learning and motivation.
This view followed from a famous 1954 paper by James Olds and Peter Milner that
described the effects of electrical stimulation on certain areas of a rat\A1\AFs
brain. They found that electrical stimulation to particular regions acted as a
very powerful reward in controlling the rat\A1\AFs behavior: \A1\B0... the control
exercised over the animal\A1\AFs behavior by means of this reward is extreme,
possibly exceeding that exercised by any other reward previously used in animal
experimentation\A1\B1 (Olds and Milner, 1954). Later research revealed that the
sites at which stimulation was most effective in producing this rewarding
effect excited dopamine pathways, either directly or indirectly, that
ordinarily are excited by natural rewarding stimuli. Effects similar to these
with rats were also observed with human subjects. These observations strongly
suggested that dopamine neuron activity signals reward.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.7pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;But if the reward prediction error hypothesis is correct\A1\AAeven if it
accounts for only some features of a dopamine neuron\A1\AFs activity\A1\AAthis
traditional view of dopamine neuron activity is not entirely correct: phasic
responses of dopamine neurons signal reward prediction errors, not reward
itself. In reinforcement learning\A1\AFs terms, a dopamine neuron\A1\AFs phasic response
at a time &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt; corresponds to &amp;amp;_&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;= Rt + &lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang0&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=211pt&gt;&lt;span
lang=EN-US&gt;V(St)\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin:0cm;margin-bottom:.0001pt;text-indent:0cm;
line-height:13.7pt;mso-line-height-rule:exactly;mso-list:l39 level1 lfo83;
tab-stops:9.1pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;(St_&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;), not to Rt.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;Reinforcement learning theory and algorithms help reconcile the reward-prediction-
error view with the conventional notion that dopamine signals reward. In many
of the algorithms we discuss in this book, &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span
lang=EN-US&gt;5&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; functions as a
reinforcement signal, mean&amp;shy;ing that it is the main driver of learning. For
example, 5 is the critical factor in the TD model of classical conditioning,
and 5 is the reinforcement signal for learn&amp;shy;ing both a value function and a
policy in an actor-critic architecture (Sections 13.5 and 15.7).
Action-dependent forms of 5 are reinforcement signals for Q-learning and Sarsa.
The reward signal Rt is a crucial component of 5t_&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;, but it is not the com&amp;shy;plete determinant of its
reinforcing effect in these algorithms. The additional term &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;V(St) \A1\AA V(St_&lt;/span&gt;&lt;/span&gt;&lt;span class=21Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;) is the higher-order reinforcement part of 5t_&lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;, and even if reward occurs (Rt = 0), the TD error
can be silent if the reward is fully predicted (which is fully explained in
Section 15.6 below).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;A closer look at Olds\A1\AF and Milner\A1\AFs 1954 paper, in fact, reveals
that it is mainly about the reinforcing effect of electrical stimulation in an
instrumental condition&amp;shy;ing task. Electrical stimulation not only energized the
rats\A1\AF behavior\A1\AAthrough dopamine\A1\AFs effect on motivation\A1\AAit also led to the rats
quickly learning to stimulate themselves by pressing a lever, which they would
do frequently for long periods of time. The activity of dopamine neurons
triggered by electrical stimulation reinforced the rats\A1\AF lever pressing.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;More recent experiments using optogenetic methods clinch the role of
phasic re&amp;shy;sponses of dopamine neurons as reinforcement signals. These methods
allow neuro&amp;shy;scientists to precisely control the activity of selected neuron
types at a millisecond timescale in awake behaving animals. Optogenetic methods
introduce light-sensitive proteins into selected neuron types so that these
neurons can be activated or silenced by means of flashes of laser light. The
first experiment using optogenetic methods to &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;study dopamine neurons showed that
optogenetic stimulation producing phasic acti&amp;shy;vation of dopamine neurons in
mice was enough to condition the mice to prefer the side of a chamber where
they received this stimulation as compared to the chamber\A1\AFs other side where
they received no, or lower-frequency, stimulation (Tsai et al. 2009). In
another example, Steinberg et al. (2013) used optogenetic activation of
dopamine neurons to create artificial bursts of dopamine neuron activity in
rats at the times when rewarding stimuli were expected but omitted\A1\AAtimes when
dopamine neuron activity normally pauses. With these pauses replaced by
artificial bursts, responding was sustained when it would ordinarily decrease
due to lack of reinforcement (in extinction trials), and learning was enabled
when it would ordinarily be blocked due to the reward being already predicted
(the blocking paradigm; Section 14.2.1).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Additional evidence for the reinforcing function of dopamine comes
from optoge- netic experiments with fruit flies, except in these animals
dopamine\A1\AFs effect is the opposite of its effect in mammals: optically triggered
bursts of dopamine neuron ac&amp;shy;tivity act just like electric foot shock in
reinforcing avoidance behavior, at least for the population of dopamine neurons
activated (Claridge-Chang et al. 2009). Although none of these optogenetic
experiments showed that phasic dopamine neuron activity is specifically like a
TD error, they convincingly demonstrated that phasic dopamine neuron activity
acts just like &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;5&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt; acts (or perhaps like &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;minus 5&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; acts in fruit flies) as the reinforcement signal in
algorithms for both prediction (classical conditioning) and control
(instrumental conditioning).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Dopamine neurons are particularly well suited to broadcasting a
reinforcement signal to many areas of the brain. These neurons have huge axonal
arbors, each releasing dopamine at &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;100&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; to &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;1,000&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt; times more synaptic sites than reached by the axons of typical
neurons. Figure 15.1 shows the axonal arbor of a single dopamine neuron whose
cell body is in the SNpc of a rat\A1\AFs brain. Each axon of a SNpc or VTA dopamine
neuron makes roughly 500,000 synaptic contacts on the dendrites of neurons in
targeted brain areas.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;background:transparent&#39;&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;If dopamine neurons broadcast a reinforcement signal
like reinforcement learning\A1\AFs 5, then since this is a scalar signal, i.e., a
single number, all dopamine neurons in both the SNpc and VTA would be expected
to activate more-or-less identically so that they would act in near synchrony
to send the same signal to all of the sites their axons target. Although it has
been a common belief that dopamine neurons do act together like this, modern
evidence is pointing to the more complicated picture that different subpopulations
of dopamine neurons respond to input differently depending on the structures to
which they send their signals and the different ways these signals act on their
target structures. Dopamine has functions other than signaling RPEs, and even for
dopamine neurons that do signal RPEs, it can make sense to send different RPEs
to different structures depending on the roles these structures play in
producing reinforced behavior. This is beyond what we treat in any detail in
this book, but vector-valued RPE signals make sense from the perspective of
reinforcement learning when decisions can be decomposed into separate
sub-decisions, or more generally, as a way to address the &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;structural&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; version of the credit assignment problem: How do
you distribute credit for success (or blame for failure) of a decision among
the many component structures that could have been involved in producing it? We
say a bit more about this in Section 15.10 below.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.3pt;
margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;The axons of
most dopamine neurons make synaptic contact with neurons in the frontal cortex
and the basal ganglia, areas of the brain involved in voluntary move&amp;shy;ment,
decision-making, learning, and cognitive functions such a planning. Since most
ideas relating dopamine to reinforcement learning focus on the basal ganglia, and
the connections from dopamine neurons are particularly dense there, we focus on
the basal ganglia here. The basal ganglia are a collection neuron groups, or
nuclei, lying at the base of the forebrain. The main input structure of the
basal ganglia is called the striatum. Essentially all of the cerebral cortex,
among other structures, provides input to the striatum. The activity of
cortical neurons conveys a wealth of informa&amp;shy;tion about sensory input, internal
states, and motor activity. The axons of cortical neurons make synaptic
contacts on the dendrites of the main input/output neurons of the striatum,
called medium spiny neurons. Output from the striatum loops back via other
basal ganglia nuclei and the thalamus to frontal areas of cortex, and to motor
areas, making it possible for the striatum to influence movement, abstract
decision processes, and reward processing. Two main subdivisions of the
striatum are important for reinforcement learning: the dorsal striatum,
primarily implicated&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:265.7pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=354 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=354 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:265.7pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_62&#34; o:spid=&#34;_x0000_i1057&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image161&#34;
   style=&#39;width:245.25pt;height:266.25pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image164.jpg&#34;
    o:title=&#34;image161&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=255 style=&#39;line-height:12.0pt;mso-line-height-rule:exactly;
  background:transparent;mso-element:frame;mso-element-frame-height:265.7pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span class=253&gt;&lt;span lang=EN-US&gt;Figure 15.1: Axonal arbor of a single
  neuron producing dopamine as a neurotransmitter whose cell body is in the
  SNpc of a rat\A1\AFs brain. These axons make synaptic contacts with a huge number
  of dendrites of neurons in targeted brain areas. Adapted from &lt;/span&gt;&lt;/span&gt;&lt;span
  class=25CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;Journal
  of Neuroscience,&lt;/span&gt;&lt;/span&gt;&lt;span class=253&gt;&lt;span lang=EN-US&gt; Matsuda,
  Furuta, Nakamura, Hioki, Fujiyama, Arai, and Kaneko, volume 29, 2009, page
  451.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:174.1pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=232 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=232 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:174.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_63&#34; o:spid=&#34;_x0000_i1056&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image162&#34;
   style=&#39;width:249.75pt;height:174pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image165.jpg&#34;
    o:title=&#34;image162&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=255 style=&#39;line-height:11.8pt;mso-line-height-rule:exactly;
  background:transparent;mso-element:frame;mso-element-frame-height:174.1pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span class=253&gt;&lt;span lang=EN-US&gt;Figure 15.2: Spine of a striatal
  neuron showing input from both cortical and dopamine neurons. Axons of
  cortical neurons influence striatal neurons via corticostriatal synapses
  releasing the neurotransmitter glutamate at the tips of spines covering the
  dendrites of striatal neurons. An axon of a VTA or SNpc dopamine neuron is
  shown passing by the spine (from the lower right). \A1\B0Dopamine varicosities\A1\B1 on
  this axon release dopamine at or near the spine stem, in an arrangement that
  brings together presynaptic input from cortex, postsynaptic activity of the
  striatal neuron, and dopamine, making it possible that several types of
  learning rules govern the plasticity of corticostriatal synapses. Each axon
  of a dopamine neuron makes synaptic contact with the stems of roughly 500,000
  spines. Some of the complexity omitted from our discussion is shown here by
  other neurotransmitter pathways and multiple receptor types, such as D1 an D2
  dopamine receptors by which dopamine can produce different effects at spines
  and other postsynaptic sites. From &lt;/span&gt;&lt;/span&gt;&lt;span
  class=25CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;Journal
  of Neurophysiology,&lt;/span&gt;&lt;/span&gt;&lt;span class=253&gt;&lt;span lang=EN-US&gt; W.
  Schultz, vol. 80, 1998, page 10.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 style=&#39;margin-top:41.8pt;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;line-height:13.55pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=491&gt;&lt;span lang=EN-US&gt;in influencing
action selection, and the ventral striatum, thought to be critical for
different aspects of reward processing, including the assignment of affective
value to sensations.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=492 style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.4pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=491&gt;&lt;span
lang=EN-US&gt;The dendrites of medium spiny neurons are covered with spines on
whose tips the axons of neurons in the cortex make synaptic contact. Also
making synaptic contact with these spines\A1\AAin this case contacting the spine
stems\A1\AAare axons of dopamine neurons (Figure 15.2). This arrangement brings
together presynaptic ac&amp;shy;tivity of cortical neurons, postsynaptic activity of
medium spiny neurons, and input from dopamine neurons. What actually occurs at
these spines is complex and not completely understood. Figure 15.2 hints at the
complexity by showing two types of receptors for dopamine, receptors for
glutamate\A1\AAthe neurotransmitter of the cor&amp;shy;tical inputs\A1\AAand multiple ways that
the various signals can interact. But evidence is mounting that changes in the
efficacies of the synapses on the pathway from the cortex to the striatum,
which neuroscientists call &lt;/span&gt;&lt;/span&gt;&lt;span class=49CenturySchoolbook0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;corticostriatal synapses,&lt;/span&gt;&lt;/span&gt;&lt;span
class=491&gt;&lt;span lang=EN-US&gt; depend critically on appropriately-timed dopamine
signals.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 align=left style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:
15.65pt;margin-left:46.0pt;text-align:left;line-height:18.0pt;mso-line-height-rule:
exactly;mso-list:l52 level1 lfo84;tab-stops:45.4pt;background:transparent&#39;&gt;&lt;a
name=bookmark249&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;15.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=141&gt;&lt;span lang=EN-US&gt;Experimental
Support for the Reward Prediction Error Hypothesis&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Dopamine
neurons respond with bursts of activity to intense, novel, or unexpected visual
and auditory stimuli that trigger eye and body movements, but very little of
their activity is related to the movements themselves. This is surprising
because degeneration of dopamine neurons is a cause of Parkinson\A1\AFs disease,
whose symptoms include motor disorders, particularly deficits in self-initiated
movement. Motivated by the weak relationship between dopamine neuron activity
and stimulus-triggered eye and body movements, Romo and Schultz (1990) and
Schultz and Romo (1990) took the first steps toward the reward prediction error
hypothesis by recording the activity of dopamine neurons and muscle activity
while monkeys moved their arms.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;They trained two monkeys to reach from a resting hand position into
a bin con&amp;shy;taining a bit of apple, a piece of cookie, or a raisin, when the
monkey saw and heard the bin\A1\AFs door open. The monkey could then grab and bring
the food to its mouth. After a monkey became good at this, it was trained on
two additional tasks. The purpose of the first task was to see what dopamine
neurons do when movements are self-initiated. The bin was left open but covered
from above so that the monkey could not see inside but could reach in from
below. No triggering stimuli were pre&amp;shy;sented, and after the monkey reached for
and ate the food morsel, the experimenter usually (though not always), silently
and unseen by the monkey, replaced food in the bin by sticking it onto a rigid
wire. Here too, the activity of the dopamine neurons Romo and Schultz monitored
was not related to the monkey\A1\AFs movements, but a large percentage of these
neurons produced phasic responses whenever the monkey first touched a food
morsel. These neurons did not respond when the monkey touched just the wire or
explored the bin when no food was there. This was good evidence that the
neurons were responding to the food and not to other aspects of the task.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The purpose of Romo and Schultz\A1\AFs second task was to see what
happens when movements are triggered by stimuli. This task used a different bin
with a moveable cover. The sight and sound of the bin opening triggered
reaching movements to the bin. In this case, Romo and Schultz found that after
some period of training, the dopamine neurons no longer responded to the touch
of the food but instead responded to the sight and sound of the opening cover
of the food bin. The phasic responses of these neurons had shifted from the
reward itself to stimuli predicting the availability of the reward. In a
followup study, Romo and Schultz found that most of the dopamine neurons whose
activity they monitored did not respond to the sight and sound of the bin
opening outside the context of the behavioral task. These observations
suggested that the dopamine neurons were responding neither to the initiation
of a movement nor to the sensory properties of the stimuli, but were rather
signaling an expectation of reward.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Schultz\A1\AFs group conducted many additional studies involving both
SNpc and VTA dopamine neurons. A particular series of experiments was
influential in suggesting that the phasic responses of dopamine neurons
correspond to TD errors and not to simpler errors like those in the
Rescorla-Wagner model (14.3). In the first of &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:#141414;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection372&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;these experiments (Ljungberg, Apicella, and Schultz, 1992), monkeys
were trained to depress a lever after a light was illuminated as a \A1\AEtrigger
cue\A1\AF to obtain a drop of apple juice. As Romo and Schultz had observed earlier,
many dopamine neurons initially responded to the reward\A1\AAthe drop of juice
(Figure 15.3, top panel). But many of these neurons lost that reward response
as training continued and devel&amp;shy;oped responses instead to the illumination of
the light that predicted the reward (Figure 15.3, middle panel). With continued
training, lever pressing became faster while the number of dopamine neurons
responding to the trigger cue decreased.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:174.25pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=232 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=232 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:174.25pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_64&#34; o:spid=&#34;_x0000_i1055&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image163&#34;
   style=&#39;width:252.75pt;height:174pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image166.jpg&#34;
    o:title=&#34;image163&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=263 style=&#39;line-height:11.9pt;mso-line-height-rule:exactly;
  background:transparent;mso-element:frame;mso-element-frame-height:174.25pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span class=261&gt;&lt;span lang=EN-US&gt;Figure 15.3: The response of dopamine
  neurons shifts from initial responses to primary reward to earlier predictive
  stimuli. These are plots of the number of action potentials produced by
  monitored dopamine neurons within small time intervals, averaged over all the
  monitored dopamine neurons (ranging from 23 to 44 neurons for these data).
  Top: dopamine neurons are activated by the unpredicted delivery of drop of
  apple juice. Middle: with learning, dopamine neurons developed responses to
  the reward-predicting trigger cue and lost responsiveness to the delivery of
  reward. Bottom: with the addition of an instruction cue preceding the trigger
  cue by &lt;/span&gt;&lt;/span&gt;&lt;span class=26CenturySchoolbook0&gt;&lt;span lang=EN-US
  style=&#39;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=261&gt;&lt;span lang=EN-US&gt;
  second, dopamine neurons shifted their responses from the trigger cue to the
  earlier instruction cue. From Schultz et al. (1995), MIT Press.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:24.65pt;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Following this study, the same monkeys were trained on a new task
(Schultz, Apicella, and Ljungberg, 1993). Here the monkeys faced two levers,
each with a light above it. Illuminating one of these lights was an
\A1\AEinstruction cue\A1\AF indicating which of the two levers would produce a drop of
apple juice. In this task, the instruction cue preceded the trigger cue of the
previous task by a fixed interval of&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;mso-list:l30 level1 lfo85;tab-stops:10.1pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;color:
black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;second. The
monkeys learned to withhold reaching until seeing the trigger cue, and dopamine
neuron activity increased, but now the responses of the monitored dopamine
neurons occurred almost exclusively to the earlier instruction cue and not to
the trigger cue (Figure 15.3, bottom panel). Here again the number of dopamine
neurons responding to the instruction cue was much reduced when the task was
well learned. During learning across these tasks, dopamine neuron activity
shifted from &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:#141414;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection373&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:10.1pt;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;initially responding to the reward to responding to the earlier
predictive stimuli, first progressing to the trigger stimulus then to the still
earlier instruction cue. As responding moved earlier in time it disappeared
from the later stimuli. This shifting of responses to earlier reward
predictors, while losing responses to later predictors is a hallmark of TD
learning (see, for example, Figure 14.5).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The task just described revealed another property of dopamine neuron
activity shared with TD learning. The monkeys sometimes pressed the wrong key,
that is, the key other than the instructed one, and consequently received no
reward. In these trials, many of the dopamine neurons showed a sharp decrease
in their firing rates below baseline shortly after the reward\A1\AFs usual time of
delivery, and this happened without the availability of any external cue to
mark the usual time of reward delivery (Figure 15.4). Somehow the monkeys were internally
keeping track of the timing of the reward. (Response timing is one area where
the simplest version of TD learning needs to be modified to account for some of
the details of the timing of dopamine neuron responses. We consider this issue
in the following section.)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:30.35pt;
margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;The
observations from the studies described above led Schultz and his group to
conclude that dopamine neurons respond to unpredicted rewards, to the earliest
predictors of reward, and that dopamine neuron activity decreases below baseline
if a reward, or a predictor of reward, does not occur at its expected time.
Researchers familiar with reinforcement learning were quick to recognize that
these results are strikingly similar to how the TD error behaves as the
reinforcement signal in a TD algorithm. The next section explores this
similarity by working through a specific example in detail.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l52 level1 lfo84;tab-stops:45.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark250&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;15.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=141&gt;&lt;span lang=EN-US&gt;TD
Error/Dopamine Correspondence&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;This section
explains the correspondence between the TD error &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;5&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; and the phasic responses of dopamine neurons
observed in the experiments just described. We examine how 5 changes over the
course of learning in a task something like the one described above where a
monkey first sees an instruction cue and then a fixed time later has to respond
correctly to a trigger cue in order to obtain reward. We use a simple idealized
version of this task, but we go into a lot more detail than is usual because we
want to emphasize the theoretical basis of the parallel between TD errors and
dopamine neuron activity.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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    &lt;p class=255 style=&#39;line-height:11.8pt;mso-line-height-rule:exactly;
    background:transparent&#39;&gt;&lt;span class=250ptExact1&gt;&lt;span lang=EN-US
    style=&#39;font-size:7.0pt&#39;&gt;Figure 15.4: The response of dopamine neurons drops
    below baseline time when an expected reward fails to occur. Top: dopamine
    neurons the unpredicted delivery of a drop of apple juice. Middle: dopamine
    neurons respond to a conditioned stimulus (CS) that predicts reward and do
    not respond to the reward itself. Bottom: when the reward predicted by the
    CS fails to occur, the activity of dopamine neurons drops below baseline
    shortly after the time the reward is expected to occur. At the top of each
    of these panels is shown the average number of action potentials produced
    by monitored dopamine neurons within small time intervals around the
    indicated times. The raster plots below show the activity patterns of the
    individual dopamine neurons that were monitored; each dot represents an
    action potential. From Schultz, Dayan, and Montague, A Neural Substrate of
    Prediction and Reward, &lt;/span&gt;&lt;/span&gt;&lt;span class=25CenturySchoolbook2&gt;&lt;span
    lang=EN-US style=&#39;font-size:8.0pt;letter-spacing:0pt&#39;&gt;Science,&lt;/span&gt;&lt;/span&gt;&lt;span
    class=250ptExact1&gt;&lt;span lang=EN-US style=&#39;font-size:7.0pt&#39;&gt; vol. 275, issue
    5306, pages 1593-1598, March 14, 1997. Reprinted with permission from AAAS.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
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  &lt;![if !mso]&gt;
  &lt;table cellpadding=0 cellspacing=0 width=&#34;100%&#34;&gt;
   &lt;tr&gt;
    &lt;td&gt;&lt;![endif]&gt;
    &lt;div&gt;
    &lt;p class=492 style=&#39;line-height:11.95pt;mso-line-height-rule:exactly;
    background:transparent&#39;&gt;&lt;span class=490ptExact&gt;&lt;span lang=EN-US
    style=&#39;font-size:7.0pt&#39;&gt;shortly after the are activated by&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
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  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;The first simplifying assumption is
that the agent has already learned the actions required to obtain reward. Then
its task is just to learn accurate predictions of future reward for the
sequence of states it experiences. This is then a prediction task, or more
technically, a policy-evaluation task: learning the value function for a fixed
policy (Sections 4.1 and 6.1). The value function to be learned assigns to each
state a value that predicts the return that will follow that state if the agent
selects actions according to the given policy, where the return is the
(possibly discounted) sum of all the future rewards. This is unrealistic as a
model of the monkey\A1\AFs situation because the monkey would likely learn these predictions
at the same time that it is learning to&lt;br clear=all style=&#39;page-break-before:
always&#39;&gt;
act correctly (as would a reinforcement learning algorithm that learns policies
as well as value functions, such as an actor-critic algorithm), but this
scenario is simpler to describe than one in which a policy and a value function
are learned simultaneously.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.6pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Now imagine that the agent\A1\AFs experience divides into multiple
trials, in each of which the same sequence of states repeats, with a distinct
state occurring on each time step during the trial. Further imagine that the
return being predicted is limited to the return over a trial, which makes a
trial analogous to a reinforcement learning episode as we have defined it. In
reality, of course, the returns being predicted are not confined to single
trials, and the time interval between trials is an important factor in
determining what an animal learns. This is true for TD learning as well, but
here we assume that returns do not accumulate over multiple trials. Given this,
then, a trial in experiments like those conducted by Schultz and colleagues is
equivalent to an episode of reinforcement learning. (Though in this discussion,
we will use the term trial instead of episode to relate better to the
experiments.)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;As usual, we also need to make an assumption about how states are
represented as inputs to the learning algorithm, an assumption that influences
how closely the TD error corresponds to dopamine neuron activity. We discuss
this issue later, but for now we assume the same CSC representation used by
Montague et al. (1996) in which there is a separate internal stimulus for each
state visited at each time step in a trial. This reduces the process to the
tabular case covered in the first part of this book. Finally, we assume that
the agent uses TD(0) to learn a value function, &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;, stored in a lookup table initialized to be zero
for all the states. We also assume that this is a deterministic task and that
the discount factor, &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;, is very nearly one so that we can ignore it.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Figure 15.5 shows the time courses of R, V, and 5 at several stages
of learning in this policy-evaluation task. The time axes represent the time
interval over which a sequence of states is visited in a trial (where for
clarity we omit showing individual states). The reward signal is zero throughout
each trial except when the agent reaches the rewarding state, shown near the
right end of the time line, when the reward signal becomes some positive
number, say R*. The goal of TD learning is to predict the return for each state
visited in a trial, which in this undiscounted case and given our assumption
that predictions are confined to individual trials, is simply R* for each
state.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Preceding the rewarding state is a sequence of reward-predicting
states, with the &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook2&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;earliest
reward-predicting state&lt;/span&gt;&lt;/span&gt;&lt;span class=5175pt&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;shown near the left end of the time line. This is like the state
near the start of a trial, for example like the state marked by the instruction
cue in a trial of the monkey experiment of Schultz et al. (1993) described
above. It is the first state in a trial that reliably predicts that trial\A1\AFs
reward. (Of course, in reality states visited on preceding trials are even
earlier reward-predicting states, but since we are confining predictions to
individual trials, these do not qualify as predictors of &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:
normal&#39;&gt;this&lt;/span&gt;&lt;/span&gt;&lt;span class=5175pt&gt;&lt;span lang=EN-US style=&#39;font-size:
7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;trial\A1\AFs
reward. Below we give a more satisfactory, though more abstract, description of
an earliest reward-predicting state.) The &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:
normal&#39;&gt;latest reward-predicting state &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;in a trial is the state immediately preceding the trial\A1\AFs rewarding
state. This is the state near the far right end of the time line in Figure
15.5. Note that the rewarding state of a trial does not predict the return for
that trial: the value of this state would come to predict the return over all
the &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook2&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;following&lt;/span&gt;&lt;/span&gt;&lt;span
class=5175pt&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;trials, which here we are assuming to be zero in
this episodic formulation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Figure 15.5 shows the first-trial time courses of V and 5 as the
graphs labeled \A1\AEearly in learning.\A1\AF Because the reward signal is zero
throughout the trial except when the rewarding state is reached, and all the
V-values are zero, the TD error is also zero until it becomes R* at the
rewarding state. This follows because 5t&lt;sub&gt;-&lt;/sub&gt;i =&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=1080 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:104.0pt;margin-bottom:.0001pt;line-height:15.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;R&lt;/span&gt;&lt;/p&gt;

&lt;p class=133 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:32.5pt;
margin-left:132.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=130&gt;&lt;span lang=EN-US&gt;&amp;lt; regular predictors of &lt;/span&gt;&lt;/span&gt;&lt;span
class=13Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=13Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=130&gt;&lt;span lang=EN-US&gt;over this interval -&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=343 align=left style=&#39;margin-top:0cm;margin-right:288.0pt;margin-bottom:
36.55pt;margin-left:45.0pt;text-align:left;line-height:12.95pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=342&gt;&lt;span lang=EN-US&gt;early in &lt;sup&gt;V&lt;/sup&gt;
learning&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=343 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
2.2pt;margin-left:45.0pt;text-align:left;line-height:8.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=342&gt;&lt;span lang=EN-US&gt;learning&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=343 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
36.65pt;margin-left:45.0pt;text-align:left;line-height:8.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=342&gt;&lt;span lang=EN-US&gt;complete&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=343 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
34.85pt;margin-left:45.0pt;text-align:left;line-height:11.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=34Batang2&gt;&lt;span lang=EN-US
style=&#39;font-size:11.0pt;font-weight:normal&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span class=342&gt;&lt;span
lang=EN-US&gt; omitted &lt;/span&gt;&lt;/span&gt;&lt;span class=34Batang2&gt;&lt;span lang=EN-US
style=&#39;font-size:11.0pt;font-weight:normal&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:37.65pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.75pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Figure 15.5: The behavior of the TD error &lt;/span&gt;&lt;span
class=ArialUnicodeMSff7&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;5 &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;during TD learning is consistent with features of the phasic
activation of dopamine neurons. (Here &lt;/span&gt;&lt;span class=ArialUnicodeMSff7&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;5 &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is the TD
error &lt;span class=affffd&gt;available&lt;/span&gt; at time &lt;/span&gt;&lt;span
class=ArialUnicodeMSff7&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, i.e., &lt;/span&gt;&lt;span class=ArialUnicodeMSff7&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;5t&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;\A1\AA&lt;/span&gt;&lt;span
class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;). &lt;span class=affffd&gt;Top:&lt;/span&gt; a sequence of states, shown as an
interval of regular predictors, is followed by a non-zero reward &lt;/span&gt;&lt;span
class=ArialUnicodeMSff7&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;R*&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;. &lt;span class=affffd&gt;Early in learning&lt;/span&gt;: the initial value
function, &lt;/span&gt;&lt;span class=ArialUnicodeMSff7&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, and initial &lt;/span&gt;&lt;span
class=ArialUnicodeMSff7&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;5&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, which at first is equal to &lt;/span&gt;&lt;span class=ArialUnicodeMSff7&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;R*&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. &lt;span
class=affffd&gt;Learning complete&lt;/span&gt;: the value function accurately predicts
future reward, &lt;/span&gt;&lt;span class=ArialUnicodeMSff7&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt;5 &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;is positive at the
earliest predictive state, and &lt;/span&gt;&lt;span class=ArialUnicodeMSff7&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;5 &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= 0 at the
time of the non-zero reward. &lt;span class=affffd&gt;R* omitted&lt;/span&gt;: at the time
the predicted reward is omitted, &lt;/span&gt;&lt;span class=ArialUnicodeMSff7&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;5 &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;becomes
negative. See text for a complete explanation of why this happens.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Rt + Vt \A1\AA Vt_i = Rt + 0 \A1\AA 0 = Rt, which is zero until it equals R*
when the reward occurs. Here Vt and Vt_i are respectively the estimated values
of the states visited at times t and t \A1\AA 1 in a trial. The TD error at this
stage of learning is analogous to a dopamine neuron responding to an
unpredicted reward, e.g., a drop apple juice, at the start of training.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Throughout this first trial
and all successive trials, TD(0) backups occur at each state transition as
described in Chapter &lt;/span&gt;&lt;span class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;. This successively increases the values
of the reward-predicting states, with the increases spreading backwards from
the rewarding state, until the values converge to the correct return
predictions. In this case (since we are assuming no discounting) the correct
predictions are equal to R* for all the reward-predicting states. This can be
seen in Figure 15.5 as the graph of&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l19 level1 lfo86;
tab-stops:12.95pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;mso-bidi-font-weight:
bold&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;labeled \A1\AElearning complete\A1\AF
where the values of all the states from the earliest to the latest
reward-predicting states all equal R*. The values of the states preceding the
earliest reward-predicting state remain low (which Figure 15.5 shows as zero)
because they are not reliable predictors of reward.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;When learning is complete, that is, when V
attains its correct values, the TD errors associated with transitions &lt;span
class=affffd&gt;from&lt;/span&gt; any reward-predicting state are zero because the
predictions are now accurate. This is because for a transition from a reward-
predicting state to another reward-predicting state, we have 5t&lt;sub&gt;-&lt;/sub&gt;i =
Rt + Vt \A1\AA Vt_i = &lt;/span&gt;&lt;span class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + R* \A1\AA R* = &lt;/span&gt;&lt;span class=9pte&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;, and for
the transition from the latest reward-predicting state to the rewarding state,
we have 5t&lt;sub&gt;-&lt;/sub&gt;i = Rt + Vt \A1\AA Vt_i = R* + 0 \A1\AA R* = 0. On the other hand,
the TD error on a transition from any state &lt;span class=affffd&gt;to&lt;/span&gt; the
earliest reward-predicting state is positive because of the mismatch between
this state\A1\AFs low value and the larger value of the following reward-predicting
state. Indeed, if the value of a state preceding the earliest reward-predicting
state were zero, then after the transition to the earliest reward-predicting
state, we would have that 5t&lt;sub&gt;-&lt;/sub&gt;i = Rt + Vt \A1\AA Vt&lt;sub&gt;-&lt;/sub&gt;i = 0 + R*
\A1\AA 0 = R*. The \A1\AElearning complete\A1\AF graph of 5 in Figure 15.5 shows this positive
value at the earliest reward-predicting state, and zeros everywhere else.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The positive TD error upon transitioning to the
earliest reward-predicting state is analogous to the persistence of dopamine
responses to the earliest stimuli predicting reward. By the same token, when
learning is complete, a transition from the latest reward-predicting state to
the rewarding state produces a zero TD error because the latest
reward-predicting state\A1\AFs value, being correct, cancels the reward. This
parallels the observation that fewer dopamine neurons generate a phasic
response to a fully predicted reward than to an unpredicted reward.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;After learning, if the reward is suddenly
omitted, the TD error goes negative at the usual time of reward because the
value of the latest reward-predicting state is then too high: 5t&lt;sub&gt;-&lt;/sub&gt;i =
Rt + Vt \A1\AA Vt&lt;sub&gt;-&lt;/sub&gt;i = &lt;/span&gt;&lt;span class=9pte&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;span
class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; \A1\AA R* = \A1\AAR*, as shown at the right end of the \A1\AER omitted\A1\AF graph of 5
in Figure 15.5. This is like dopamine neuron activity decreasing below baseline
at the time an expected reward is omitted as seen in the experiment of Schultz
et al. (1993) described above and shown in Figure 15.4.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;The idea of an &lt;span class=affffd&gt;earliest
reward-predicting state&lt;/span&gt; deserves more attention. In the scenario
described above, since experience is divided into trials, and we assumed that
predictions are confined to individual trials, the earliest reward-predicting
state is always the first state of a trial. Clearly this is artificial. A more
general way to think of an earliest reward-predicting state is that it is an &lt;span
class=affffd&gt;unpredicted predictor&lt;/span&gt; of reward, and there can be many such
states. In an animal\A1\AFs life, many different states may precede an earliest
reward-predicting state. However, because these states are more often followed
by &lt;span class=affffd&gt;other&lt;/span&gt; states that do not predict reward, their
reward-predicting powers, that is, their values, remain low. A TD algorithm, if
operating throughout the animal\A1\AFs life, would back up values to these states
too, but the backups would not consistently accumulate because, by assumption,
none of these states reliably precedes an earliest reward-predicting state. If
any of them did, they would be reward-predicting states as well. This might
explain why with overtraining, dopamine responses decrease to even the earliest
reward-predicting stimulus in a trial. With overtraining one would expect that
even a formerly-unpredicted predictor state would become predicted by stimuli
associated with earlier states: the animal\A1\AFs interaction with its environment
both inside and outside of an experimental task would become commonplace. Upon
breaking this routine with the introduction of a new task, however, one would
see TD errors reappear, as indeed is observed in dopamine neuron&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d align=left style=&#39;margin-bottom:1.05pt;text-align:left;line-height:
9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;activity.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The example described above explains why the TD error shares key
features with the phasic activity of dopamine neurons when the animal is
learning in a task similar to the idealized task of our example. But not every
property of the phasic activity of dopamine neurons coincides so neatly with
properties of 5. One of the most troubling discrepancies involves what happens
when a reward occurs &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;earlier&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; than expected. We have seen that the omission of an
expected reward produces a negative prediction error at the reward\A1\AFs expected
time, which corresponds to the activity of dopamine neurons decreasing below
baseline when this happens. If the reward arrives later than expected, it is
then an unexpected reward and generates a positive prediction error. This
happens with both TD errors and dopamine neuron responses. But when reward
arrives earlier than expected, dopamine neurons do not do what the TD error
does\A1\AAat least with the CSC representation used by Montague et al. (1996) and by
us in our example. Dopamine neurons do respond to the early reward, which is
consistent with a positive TD error because the reward is not predicted to
occur then. However, at the later time when the reward is expected but omitted,
the TD error is negative whereas, in contrast to this prediction, dopamine
neuron activity does not drop below baseline in the way the TD model predicts
(Hollerman and Schultz, 1998). Something more complicated is going on in the
animal\A1\AFs brain than simply TD learning with a CSC representation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Some of the mismatches between the TD error and dopamine neuron
activity can be addressed by selecting suitable parameter values for the TD
algorithm and by using stimulus representations other than the CSC
representation. For instance, to address the early-reward mismatch just
described, Suri and Schultz (1999) proposed a CSC representation in which the
sequences of internal signals initiated by earlier stimuli are cancelled by the
occurrence of a reward. Another proposal by Daw, Courville, and Touretzky
(2006) is that the brain\A1\AFs TD system uses representations produced by
statistical modeling carried out in sensory cortex rather than simpler
representations based on raw sensory input. Ludvig, Sutton, and Kehoe (2008)
found that TD learning with a microstimulus (MS) representation (Figure 14.2)
fits the activity of dopamine neurons in the early-reward and other situations
better than when a CSC representation is used. Pan, Schmidt, Wickens, and
Hyland (2005) found that even with the CSC representation, prolonged eligibility
traces improve the fit of the TD error to some aspects of dopamine neuron
activity. In general, many fine details of TD-error behavior depend on subtle
interactions between eligibility traces, discounting, and stimulus
representations. Findings like these elaborate and refine the reward prediction
error hypothesis without refuting its core claim that the phasic activity of
dopamine neurons is well characterized as signaling TD errors.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;On the other hand, there are other discrepancies between the TD
theory and ex&amp;shy;perimental data that are not so easily accommodated by selecting
parameter values and stimulus representations (we mention some of these
discrepancies in the Bib&amp;shy;liographical and Historical Remarks section at the end
of this chapter), and more mismatches are likely to be discovered as
neuroscientists conduct ever more refined experiments. But the reward
prediction error hypothesis has been functioning very effectively as a catalyst
for improving our understanding of how the brain\A1\AFs reward system works.
Intricate experiments have been designed to validate or refute pre&amp;shy;dictions
derived from the hypothesis, and experimental results have, in turn, led to
refinement and elaboration of the TD error/dopamine hypothesis.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;A remarkable aspect of these developments is that the reinforcement
learning algo&amp;shy;rithms and theory that connect so well with properties of the
dopamine system were developed from a computational perspective in total
absence of any knowledge about the relevant properties of dopamine neurons\A1\AAremember,
TD learning and its con&amp;shy;nections to optimal control and dynamic programming
were developed many years before any of the experiments were conducted that
revealed the TD-like nature of dopamine neuron activity. This unplanned
correspondence, despite not being per&amp;shy;fect, suggests that the TD error/dopamine
parallel captures something significant about brain reward processes.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:30.35pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;In addition to
accounting for many features of the phasic activity of dopamine neurons, the
reward prediction error hypothesis links neuroscience to other aspects of
reinforcement learning, in particular, to learning algorithms that use TD
errors as reinforcement signals. Neuroscience is still far from reaching
complete understand&amp;shy;ing of the circuits, molecular mechanisms, and functions of
the phasic activity of dopamine neurons, but evidence supporting the reward
prediction error hypothe&amp;shy;sis, along with evidence that phasic dopamine
responses are reinforcement signals for learning, suggest that the brain might
implement something like an actor-critic algorithm in which TD errors play
critical roles. Other reinforcement learning algo&amp;shy;rithms are plausible
candidates too, but actor-critic algorithms fit the anatomy and physiology of
the mammalian brain particularly well, as we describe in the following two
sections.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.8pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l52 level1 lfo84;tab-stops:44.4pt;background:transparent&#39;&gt;&lt;a
name=bookmark251&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;15.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=141&gt;&lt;span lang=EN-US&gt;Neural
Actor\A1\AACritic&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Actor-critic
algorithms learn both policies and value functions. The \A1\AEactor\A1\AF is the
component that learns policies, and the \A1\AEcritic\A1\AF is the component that learns
about whatever policy is currently being followed by the actor in order to
\A1\AEcriticize\A1\AF the actor\A1\AFs action choices. The critic uses a TD algorithm to learn
the state-value function for the actor\A1\AFs current policy. The value function
allows the critic to critique the actor\A1\AFs action choices by sending TD errors,
5, to the actor. A positive 5 means that the action was \A1\AEgood\A1\AF because it led
to a state with a better-than-expected value; a negative 5 means that the
action was \A1\AEbad\A1\AF because it led to a state with a worse-than-expected value.
Based on these critiques, the actor continually updates its policy.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Two distinctive features of actor-critic algorithms are responsible
for thinking that the brain might implement an algorithm like this. First, the
two components of an actor-critic algorithm\A1\AAthe actor and the critic\A1\AAsuggest
that two parts of the striatum\A1\AAthe dorsal and ventral subdivisions (Section
15.4), both critical for reward- based learning\A1\AAmay function respectively
something like an actor and a critic. A &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:#141414;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection374&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;second property of actor-critic algorithms that suggests a brain
implementation is that the TD error has the dual role of being the
reinforcement signal for both the actor and the critic, though it has a
different influence on learning in each of these components. This fits well
with several properties of the neural circuitry: axons of dopamine neurons
target both the dorsal and ventral subdivisions of the striatum; dopamine
appears to be critical for modulating synaptic plasticity in both structures;
and how a neuromodulator such as dopamine acts on a target structure depends on
properties of the target structure and not just on properties of the
neuromodulator.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Section 13.5 presents actor-critic algorithms as policy gradient
methods, but the actor-critic algorithm of Barto, Sutton, and Anderson (1983)
was simpler and was presented as an artificial neural network. Here we describe
an artificial neural net&amp;shy;work implementation something like that of Barto et
al., and we follow Takahashi, Schoenbaum, and Niv (2008) in giving a schematic
proposal for how this artificial neural network might be implemented by real
neural networks in the brain. We postpone discussion of the actor and critic
learning rules until Section 15.8, where we present them as special cases of
the policy-gradient formulation and discuss what they suggest about how
dopamine might modulate synaptic plasticity.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Figure 15.6a shows an implementation of an actor-critic algorithm as
an artificial neural network with component networks implementing the actor and
the critic. The critic consists of a single neuron-like unit, V , whose output
activity represents state values, and a component shown as the diamond labeled
TD that computes TD errors by combining V \A1\AFs output with reward signals and
with previous state values (as suggested by the loop from the TD diamond to
itself). The actor network has a single layer of &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; actor units labeled Ai, &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; = &lt;/span&gt;&lt;/span&gt;&lt;span class=511pt&gt;&lt;span lang=EN-US&gt;1,...,&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=519&gt;&lt;span lang=EN-US&gt;k.&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; The output of each actor unit is a component of a
k-dimensional action vector. An alternative is that there are k separate
actions, one commanded by each actor unit, that compete with one another to be
executed, but here we will think of the entire &lt;/span&gt;&lt;/span&gt;&lt;span
class=51MingLiU&gt;&lt;span style=&#39;font-size:6.0pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;\D2\E6&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;-vector as
an action.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Both the critic and actor networks receive input consisting of
multiple features representing the state of the agent\A1\AFs environment. (Recall
from Chapter 1 that the environment of a reinforcement learning agent includes
components both inside and outside of the \A1\AEorganism\A1\AF containing the agent.) The
figure shows these features as the circles labeled xi, X&lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=511pt&gt;&lt;span lang=EN-US&gt;,...,&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt; x&lt;sub&gt;n&lt;/sub&gt;, shown twice just to keep the figure simple. A weight
representing the efficacy of a synapse is associated with each connection from
each feature Xi to the critic unit, &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;, and to each of the action units, Ai. The weights
in the critic network parameterize the value function, and the weights in the
actor network parameterize the policy. The networks learn as these weights
change according to the critic and actor learning rules that we describe in the
following section.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The TD error produced by circuitry in the critic is the
reinforcement signal for changing the weights in both the critic and the actor
networks. This is shown in Figure 15.6a by the line labeled \A1\AETD error 5\A1\AF
extending across all of the connections in the critic and actor networks. This
aspect of the network implementation, together with the reward prediction error
hypothesis and the fact that the activity of dopamine neurons is so widely
distributed by the extensive axonal arbors of these neurons, suggests that an
actor-critic network something like this may not be too farfetched&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d align=left style=&#39;margin-bottom:1.25pt;text-align:left;line-height:
9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;as a hypothesis about how reward-related learning might happen in
the brain.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Figure 15.6b
suggests\A1\AAvery schematically\A1\AAhow the artificial neural network on the figure\A1\AFs
left might map onto structures in the brain according to the hypothesis of
Takahashi et al. (2008). The hypothesis puts the actor and the value-learning
part of the critic respectively in the dorsal and ventral subdivisions of the
striatum, the input structure of the basal ganglia. Recall from Section 15.4
that the dorsal striatum is primarily implicated in influencing action selection,
and the ventral stria&amp;shy;tum is thought to be critical for different aspects of
reward processing, including the assignment of affective value to sensations.
The cerebral cortex, along with other structures, sends input to the striatum
conveying information about stimuli, internal states, and motor activity.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;In this
hypothetical actor-critic brain implementation, the ventral striatum sends
value information to the VTA and SNpc, where dopamine neurons in these nuclei&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:#141414;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection375&gt;

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  o:title=&#34;image166&#34;/&gt;
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 mso-position-vertical-relative:text;mso-width-percent:0;mso-height-percent:0;
 mso-width-relative:page;mso-height-relative:page&#39;&gt;
 &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image174.png&#34;
  o:title=&#34;image167&#34;/&gt;
 &lt;w:wrap anchorx=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:22.15pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection376&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;line-height:11.75pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Figure 15.6:
Actor-critic artificial neural network and a hypothetical neural implementa&amp;shy;tion.
a) Actor-critic algorithm as an artificial neural network. The actor adjusts a
policy based on the TD error 5 it receives from the critic; the critic adjusts
state-value parameters using the same 5. The critic produces a TD error from
the reward signal, R, and the current change in its estimate of state values.
The actor does not have direct access to the reward signal, and the critic does
not have direct access to the action. b) Hypothetical neural im&amp;shy;plementation of
an actor-critic algorithm. The actor and the value-learning part of the critic
are respectively placed in the ventral and dorsal subdivisions of the striatum.
The TD error is transmitted by dopamine neurons located in the VTA and SNpc to
modulate changes in synaptic efficacies of input from cortical areas to the
ventral and dorsal striatum. Adapted from Frontiers in Neuroscience, vol. 2(1),
2008, Y. Takahashi, G. Schoenbaum, and Y. Niv, Silencing the critics:
Understanding the effects of cocaine sensitization on dorsolateral and ventral
striatum in the context of an Actor/Critic model.&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;combine it
with information about reward to generate activity corresponding to TD errors
(though exactly how dopaminergic neurons calculate these errors is not yet un&amp;shy;derstood).
The \A1\AETD error 5\A1\AF line in Figure 15.6a becomes the line labeled \A1\AEDopamine\A1\AF in
Figure 15.6b, which represents the widely branching axons of dopamine neurons
whose cell bodies are in the VTA and SNpc. Referring back to Figure 15.2, these
axons make synaptic contact with the spines on the dendrites of medium spiny
neu&amp;shy;rons, the main input/output neurons of both the dorsal and ventral
divisions of the striatum. Axons of the cortical neurons that send input to the
striatum make synaptic contact on the tips of these spines. According to the
hypothesis, it is at these spines where changes in the efficacies of the
synapses from cortical regions to the stratum are governed by learning rules
that critically depend on a reinforcement signal supplied by dopamine.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;An important implication of the hypothesis illustrated in Figure
15.6b is that the dopamine signal is not the \A1\AEmaster\A1\AF reward signal like the
scalar Rt of reinforcement learning. In fact, the hypothesis implies that one
should not necessarily be able to probe the brain and record any signal like Rt
in the activity of any single neuron. Many interconnected neural systems
generate reward-related information, with dif&amp;shy;ferent structures being recruited
depending on different types of rewards. Dopamine neurons receive information
from many different brain areas, so the input to the SNpc and VTA labeled
\A1\AEReward\A1\AF in Figure 15.6b should be thought of as vector of reward-related
information arriving to neurons in these nuclei along multiple input channels.
What the theoretical scalar reward signal Rt might correspond to, then, is the
net contribution of all reward-related information to dopamine neuron activity.
It is the result of a pattern of activity across many neurons in different
areas of the brain.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Although the
actor-critic neural implementation illustrated in Figure 15.6b may be correct
on some counts, it clearly needs to be refined, extended, and modified to qualify
as a full-fledged model of the function of the phasic activity of dopamine
neurons. The Historical and Bibliographic Remarks section at the end of this
chapter cites publications that discuss in more detail both empirical support
for this hypoth&amp;shy;esis and places where it falls short. We now look in detail at
what the actor and critic learning algorithms suggest about the rules governing
changes in synaptic efficacies of corticostriatal synapses.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l52 level1 lfo84;tab-stops:44.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark252&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;15.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=141&gt;&lt;span lang=EN-US&gt;Actor and
Critic Learning Rules&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;If the brain
does implement something like the actor-critic algorithm\A1\AAand assuming
populations of dopamine neurons broadcast a common reinforcement signal to the
corticostriatal synapses of both the dorsal and ventral striatum as illustrated
in Figure 15.6b (which is likely an oversimplification as we mentioned
above)\A1\AAthen this reinforcement signal affects the synapses of these two
structures in different ways. The learning rules for the critic and the actor
use the same reinforcement signal, the TD error 5, but its effect on learning
is different for these two components. The TD error (combined with eligibility
traces) tells the actor how to update action &lt;/span&gt;&lt;/span&gt;&lt;span class=ac&gt;&lt;span
lang=EN-US&gt;probabilities in order to reach higher-valued states. Learning by
the actor is like instrumental conditioning using a Law-of-Effect-type learning
rule (Section 1.7): the actor works to keep 5 as positive as possible. On the
other hand, the TD error (when combined with eligibility traces) tells the
critic the direction and magnitude in which to change the parameters of the
value function in order to improve its predictive accuracy. The critic works to
reduce 5\A1\AFs magnitude to be as close to zero as possible using a learning rule
like the TD model of classical conditioning (Section 14.2). The difference
between the critic and actor learning rules is relatively simple, but this
difference has a profound effect on learning and is essential to how the
actor-critic algorithm works. The difference lies solely in the eligibility
traces each type of learning rule uses.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:12.15pt;text-align:justify;text-justify:
inter-ideograph;text-indent:15.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;More than one set of learning
rules can be used in actor-critic neural networks like those in Figure 15.6b,
but to be specific, here we focus on rules based on the REINFORCE
policy-gradient formulation described in Section 13.5. The box below recaps
that method using the pseudocode for a policy-gradient actor-critic with
eligibility traces from the box in Section 13.5.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:5.95pt;text-align:justify;text-justify:
inter-ideograph;text-indent:15.0pt;line-height:9.5pt;mso-line-height-rule:exactly;
background:black&#39;&gt;&lt;span class=af7&gt;&lt;span lang=EN-US&gt;Policy-Gradient Actor-Critic&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:14.0pt;margin-bottom:6.0pt;
margin-left:15.0pt;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Input: a differentiable policy
parameterization n(a|s, 0), Va G A, s G S, &lt;span class=affffd&gt;Q&lt;/span&gt; G R&lt;sup&gt;d&lt;/sup&gt;
Input: a differentiable state-value parameterization v(s,&lt;/span&gt;&lt;span
class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;), Vs
G S, &lt;/span&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;G R&lt;sup&gt;m&lt;/sup&gt; Hyperparameters: step sizes &lt;span class=affffd&gt;a&lt;/span&gt;
&amp;gt; 0, ^ &amp;gt; 0&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;At each iteration:&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Current state is &lt;span class=affffd&gt;S&lt;/span&gt; Take
action A &lt;/span&gt;&lt;span class=MingLiUfb&gt;&lt;span style=&#39;font-size:8.5pt;mso-ansi-language:
ZH-TW&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;n(-|S, Q), observe &lt;span class=affffd&gt;S&lt;sup&gt;!&lt;/sup&gt;&lt;/span&gt;,
R&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:249.0pt;margin-bottom:21.0pt;
margin-left:15.0pt;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l57 level1 lfo87;tab-stops:23.9pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;\A1\AA R + &lt;/span&gt;&lt;span class=12pt6&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;yv&lt;/span&gt;&lt;/span&gt;&lt;span
class=CenturySchoolbookfb&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=12pt6&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;S &lt;sup&gt;;&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,&lt;/span&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) \A1\AA {)(S,&lt;/span&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) &lt;/span&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;e&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt; \A1\AA A&lt;sup&gt;w&lt;/sup&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;e&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; + Vw &lt;/span&gt;&lt;span class=MingLiUfff4&gt;&lt;span style=&#39;font-size:11.5pt;
mso-ansi-language:ZH-TW&#39;&gt;\D0\C4&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(S,&lt;/span&gt;&lt;span
class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) &lt;span
class=affffd&gt;e\A1\E3&lt;/span&gt; \A1\AA &lt;span class=affffd&gt;A&lt;sup&gt;6&lt;/sup&gt;e&lt;sup&gt;0&lt;/sup&gt;&lt;/span&gt; +
&lt;span class=affffd&gt;V&lt;sub&gt;e&lt;/sub&gt;&lt;/span&gt; logn(A|S, Q) &lt;/span&gt;&lt;span
class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;span
class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;span
class=MingLiUfff4&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;¬&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;5 &lt;/span&gt;&lt;span
class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;e&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; Q \A1\AA Q + a5 &lt;/span&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;e&lt;sup&gt;0&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:7.15pt;text-align:justify;text-justify:
inter-ideograph;text-indent:15.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The first step is to think of
the value function as the output of a single linear neuron-like unit, called
the &lt;span class=affffd&gt;critic unit&lt;/span&gt; and labeled V in Figure 15.6a. Then
the value function is a linear function of the feature-vector representation of
state s, &lt;/span&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;(s) = (xi(s),..., x&lt;sub&gt;n&lt;/sub&gt;(s))&lt;/span&gt;&lt;span class=12pt6&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;,
parameterized by a weight vector &lt;/span&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span
lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt6&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=12pt6&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;= (wi,...,
w&lt;sub&gt;n&lt;/sub&gt;):&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:4.25pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:right 400.7pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;v(s,&lt;/span&gt;&lt;span
class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) = &lt;/span&gt;&lt;span
class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=12pt6&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt&#39;&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(s).&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(15.1)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Each Xi(s) is like the presynaptic signal to a
neuron\A1\AFs synapse whose efficacy is Wi. The weights are updated according to the
rule in the box above: &lt;/span&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;w
\A1\AA w &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;+ ^5&lt;/span&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span
lang=EN-US&gt;e&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;,
where the reinforcement signal, 5, corresponds to a dopamine signal being
broadcast to all of the critic unit\A1\AFs synapses. The eligibility trace vector, &lt;/span&gt;&lt;span
class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;e&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;, for the critic unit is a trace of &lt;/span&gt;&lt;span
class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;wV(s,&lt;/span&gt;&lt;span
class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) for
past states s. Since v(s,&lt;/span&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;) is linear in the weights,&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:0cm;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l19 level1 lfo86;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;font-family:
&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;mso-bidi-font-weight:bold&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;w v(s,&lt;/span&gt;&lt;span
class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;) = &lt;/span&gt;&lt;span
class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;(s).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:15.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;In neural terms, this means that each synapse has
its own eligibility trace, which is one component of the vector &lt;/span&gt;&lt;span
class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;e&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;. A synapse\A1\AFs eligibility trace accumulates according &lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;to the level of activity arriving at that synapse,
that is, the level of presynaptic activity, represented here by the component
of the feature vector &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;(s)
arriving at that synapse. The trace otherwise decays toward zero at a rate
governed by the fraction A&lt;sup&gt;w&lt;/sup&gt;. A synapse is &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;eligible
for modification&lt;/span&gt;&lt;/span&gt;&lt;span class=5175pt&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;as long
as its eligibility trace is non-zero. How the synapse\A1\AFs efficacy is actually
modified depends on the reinforcement signals that arrive while the synapse is
eligible. We call eligibility traces like these of the critic unit\A1\AFs synapses &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;non-contingent
eligibility traces&lt;/span&gt;&lt;/span&gt;&lt;span class=5175pt&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;because
they only depend on presynaptic activity and are not contingent in any way on
postsynaptic activity.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The non-contingent eligibility traces of the critic unit\A1\AFs synapses
mean that the critic unit\A1\AFs learning rule is essentially the TD model of
classical conditioning de&amp;shy;scribed in Section 14.2. With the definition we have
given above of the critic unit and its learning rule, the critic in Figure
15.6a is the same as the critic in the neural network actor-critic of Barto et
al. (1983). Clearly, a critic like this consisting of just one linear
neuron-like unit is the simplest starting point; this critic unit is a proxy
for a more complicated neural network able to learn value functions of greater
complexity.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:19.15pt;
margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;The actor in
Figure 15.6a is a one-layer network of &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:
normal&#39;&gt;k&lt;/span&gt;&lt;/span&gt;&lt;span class=5175pt&gt;&lt;span lang=EN-US style=&#39;font-size:
7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;neuron-like
actor units, each receiving the same feature vector, &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;(s), that the critic unit receives. Each actor unit &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:
normal&#39;&gt;j&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:
normal&#39;&gt;j&lt;/span&gt;&lt;/span&gt;&lt;span class=5175pt&gt;&lt;span lang=EN-US style=&#39;font-size:
7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=511pt&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=511pt&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\AD,&lt;/span&gt;&lt;span lang=EN-US&gt;k,&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; has its own weight vector, , but since the actor
units are all identical, we describe just one of the units and omit the
subscript. One way for these units to follow the policy-gradient formulation in
the box above is for each to be a &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:
normal&#39;&gt;Bernoulli-logistic unit&lt;/span&gt;&lt;/span&gt;&lt;span class=5175pt&gt;&lt;span
lang=EN-US style=&#39;font-size:7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;with a REINFORCE policy-gradient learning rule. This
means that the output of each actor unit is a random variable, A, taking value
0 or 1. Think of value 1 as the neuron firing, that is, emitting an action
potential. The weighted sum, &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;(s), of a unit\A1\AFs input vector determines the unit\A1\AFs
action probabilities via the exponential softmax distribution (13.2), which for
two actions is the logistic function:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.75pt;
margin-left:28.0pt;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:
right 398.7pt;background:transparent&#39;&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;n(1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=51Batang6&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;|&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;,&lt;sup&gt;0) = &lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;sup&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;\A1\AA &lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;n(0&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=51Batang6&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;|&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;s&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;$&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; = &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook3&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=51a&gt;&lt;span
lang=EN-US&gt; + exp(&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang7&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;T&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=511pt&gt;&lt;span lang=EN-US&gt;(s)).&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(15&lt;/sup&gt;.&lt;sup&gt;2)&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:7.15pt;
margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;The weights of
each actor unit are updated by the rule in the box above: &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span
lang=ZH-TW style=&#39;font-size:12.0pt;mso-ansi-language:ZH-TW;font-weight:normal&#39;&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A8D &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;d&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span class=51MingLiU&gt;&lt;span
style=&#39;font-size:6.0pt;mso-ansi-language:ZH-TW;font-weight:normal&#39;&gt;¬&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;5 &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;\A1\E3, where 5 again corresponds to the dopamine signal:
the same reinforcement signal that is sent to all the critic unit\A1\AFs synapses.
Figure 15.6a shows 5 being broadcast to all the synapses of all the actor units
(which makes this actor network a &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:
normal&#39;&gt;team&lt;/span&gt;&lt;/span&gt;&lt;span class=5175pt&gt;&lt;span lang=EN-US style=&#39;font-size:
7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;of
reinforcement learning agents, something we discuss in Section 15.10 below).
The actor eligibility trace vector &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;e&lt;sup&gt;9&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; is a trace of &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;Ve&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; log n(A&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;s, &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;) for past states s. To understand this eligibility
trace refer to Exercise 13.7, which defines this kind of unit and asks you to
give the REINFORCE learning rule for it. That exercise asked you to express &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;Ve
&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;logn(A&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;s, &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;) in terms of A, &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;(s), and n(A&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;s, &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;) by calculating the gradient. The answer we were
looking for is:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.75pt;
margin-left:28.0pt;line-height:12.0pt;mso-line-height-rule:exactly;tab-stops:
right 398.7pt;background:transparent&#39;&gt;&lt;span class=51Batang6&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;Ve&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;n(A&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;s, &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;) = (A &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;n(A&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;|&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;s, &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;))&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;(s).&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(15.3)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Unlike the non-contingent eligibility trace of a critic synapse that
only accumu&amp;shy;lates the presynaptic activity &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;(s), the eligibility trace of an actor unit\A1\AFs
synapse in addition depends on the activity of the actor unit itself. We call
this a &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:
8.5pt;font-weight:normal&#39;&gt;contingent eligibility trace&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; because it is contingent on this postsynaptic
activity. The eligibility trace at each synapse continually decays, but
increments or decrements depending on the activity of the presynaptic neuron
AND whether or not the postsynaptic neuron fires. The factor &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; \A1\AA n(A|s, &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;d)&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; in (15.3) is positive when &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; = &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt; and negative other&amp;shy;wise. &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;The postsynaptic
contingency in the eligibility traces of actor units is the only difference
between the critic and actor learning rules.&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt; By keeping information about what actions were taken in what
states, contingent eligibility traces allow credit for reward (positive 5), or
blame for punishment (negative 5), to be apportioned among the policy
parameters (the efficacies of the actor units\A1\AF synapses) according to the
contributions these parameters made to the units\A1\AF outputs that could have influ&amp;shy;enced
later values of 5. Contingent eligibility traces mark the synapses as to how
they should be modified to alter the units\A1\AF future responses to favor positive
values of 5.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;What do the critic and actor learning rules suggest about how
efficacies of corti- costriatal synapses change? Both learning rules are
related to Donald Hebb\A1\AFs classic proposal that whenever a presynaptic signal
participates in activating the postsy&amp;shy;naptic neuron, the synapse\A1\AFs efficacy
increases (Hebb, 1949). The critic and actor learning rules share with Hebb\A1\AFs
proposal the idea that changes in a synapse\A1\AFs ef&amp;shy;ficacy depend on the
interaction of several factors. In the critic learning rule the interaction is
between the reinforcement signal 5 and eligibility traces that depend only on
presynaptic signals. Neuroscientists call this a &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;two-factor
learning rule&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt; be&amp;shy;cause the
interaction is between two signals or quantities. The actor learning rule, on
the other hand, is a &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;three-factor learning rule&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; because, in addition to depending on 5, its
eligibility traces depend on both presynaptic and postsynaptic activity. Unlike
Hebb\A1\AFs proposal, however, the relative timing of the factors is critical to how
synaptic efficacies change, with eligibility traces intervening to allow the
reinforcement signal to affect synapses that were active in the recent past.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Some subtleties about signal timing for the actor and critic
learning rules de&amp;shy;serve closer attention. In defining the neuron-like actor and
critic units, we ignored the small amount of time it takes synaptic input to
effect the firing of a real neu&amp;shy;ron. When an action potential from the
presynaptic neuron arrives at a synapse, neurotransmitter molecules are
released that diffuse across the synaptic cleft to the postsynaptic neuron,
where they bind to receptors on the postsynaptic neuron\A1\AFs sur&amp;shy;face; this
activates molecular machinery that causes the postsynaptic neuron to fire (or
to inhibit its firing in the case of inhibitory synaptic input). This process
can take several tens of milliseconds. According to (15.1) and (15.2), though,
the in&amp;shy;put to a critic and actor unit instantaneously produces the unit\A1\AFs
output. Ignoring activation time like this is common in abstract models of
Hebbian-style plasticity in which synaptic efficacies change according to a
simple product of simultaneous pre- and postsynaptic activity. More realistic
models must take activation time into account.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Activation time is especially important for a more realistic actor
unit because it influences how contingent eligibility traces have to work in
order to properly&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:#141414;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection377&gt;

&lt;p class=51d style=&#39;margin-right:14.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;apportion
credit for reinforcement to the appropriate synapses. The expression (A \A1\AA
n(A|s, &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt;font-weight:normal&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;))&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;(s) defining contingent eligibility traces for the
actor unit\A1\AFs learning rule given above includes the postsynaptic factor (A \A1\AA
n(A|s, &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:
12.0pt;font-weight:normal&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;))
and the presynaptic factor &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;(s). This works because by ignoring activation time,
the presynaptic activity &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;x&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;(s) participates in &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;causing&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; the postsynaptic activity appearing in (A \A1\AA n(A|s, &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;Q&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;)). To assign credit for reinforcement correctly,
the presynaptic factor defining the eli&amp;shy;gibility trace must be a cause of the
postsynaptic factor that also defines the trace. Contingent eligibility traces
for a more realistic actor unit would have to take ac&amp;shy;tivation time into
account. (Activation time should not be confused with the time required for a
neuron to receive a reinforcement signal influenced by that neuron\A1\AFs activity.
The function of eligibility traces is to span this time interval which is gen&amp;shy;erally
much longer than the activation time. We discuss this further in the following
section.)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:14.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;There are hints from neuroscience for how this process might work in
the brain. Neuroscientists have discovered a form of Hebbian plasticity called &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;spike-timing-
dependent plasticity&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt; (STDP) that
lends plausibility to the existence of actor-like synaptic plasticity in the
brain. STDP is a Hebbian-style plasticity, but changes in a synapse\A1\AFs efficacy
depend on the relative timing of presynaptic and postsynaptic action
potentials. The dependence can take different forms, but in the one most
studied, a synapse increases in strength if spikes incoming via that synapse
arrive shortly before the postsynaptic neuron fires. If the timing relation is
reversed, with a presynaptic spike arriving shortly after the postsynaptic
neuron fires, then the strength of the synapse decreases. STDP is a type of
Hebbian plasticity that takes the activation time of a neuron into account,
which is one of the ingredients needed for actor-like learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:14.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The discovery of STDP has led neuroscientists to investigate the
possibility of a three-factor form of STDP in which neuromodulatory input must
follow appropriately- timed pre- and postsynaptic spikes. This form of synaptic
plasticity, called &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;reward- modulated STDP,&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; is much like the actor learning rule discussed
here. Synaptic changes that would be produced by regular STDP only occur if
there is neuromodu- latory input within a time window after a presynaptic spike
is closely followed by a postsynaptic spike. Evidence is accumulating that
reward-modulated STDP occurs at the spines of medium spiny neurons of the
dorsal striatum, with dopamine pro&amp;shy;viding the neuromodulatory factor\A1\AAthe sites
where actor learning takes place in the hypothetical neural implementation of
an actor-critic algorithm illustrated in Fig&amp;shy;ure 15.6b. Experiments have
demonstrated reward-modulated STDP in which lasting changes in the efficacies
of corticostriatal synapses occur only if a neuromodulatory pulse arrives
within a time window that can last up to &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; seconds after a presynaptic spike is closely
followed by a postsynaptic spike (Yagishita et al. 2014). Although the evidence
is indirect, these experiments point to the existence of contingent eligibility
traces having prolonged time courses. The molecular mechanisms producing these
traces, as well as the much shorter traces that likely underly STDP, are not
yet un&amp;shy;derstood, but research focusing on time-dependent and
neuromodulator-dependent synaptic plasticity is continuing.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;The
neuron-like actor unit that we have described here, with its Law-of-Effect-
style learning rule, appeared in somewhat simpler form in the actor-critic
network of Barto et al. (1983). That network was inspired by the \A1\B0hedonistic
neuron\A1\B1 hypothesis proposed by physiologist A. H. Klopf (1972, 1982). Not all
the details of Klopf\A1\AFs hypothesis are consistent with what has been learned
about synaptic plasticity, but the discovery of STDP and the growing evidence
for a reward-modulated form of STDP suggest that Klopf\A1\AFs ideas may not have
been far off the mark. We discuss Klopf\A1\AFs hedonistic neuron hypothesis next.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.05pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l52 level1 lfo84;tab-stops:44.4pt;background:transparent&#39;&gt;&lt;a
name=bookmark253&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;15.9&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=141&gt;&lt;span lang=EN-US&gt;Hedonistic
Neurons&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;In his
hedonistic neuron hypothesis, Klopf (1972, 1982) conjectured that individual
neurons seek to maximize the difference between synaptic input treated as
rewarding and synaptic input treated as punishing by adjusting the efficacies
of their synapses on the basis of rewarding or punishing consequences of their
own action potentials. In other words, individual neurons can be trained with
response-contingent rein&amp;shy;forcement like an animal can be trained in an
instrumental conditioning task. His hypothesis included the idea that rewards
and punishments are conveyed to a neuron via the same synaptic input that
excites or inhibits the neuron\A1\AFs spike-generating ac&amp;shy;tivity. (Had Klopf known
what we know today about neuromodulatory systems, he might have assigned the
reinforcing role to neuromodulatory input, but he wanted to avoid any
centralized source of training information.) Synaptically-local traces of past
pre- and postsynaptic activity had the key function in Klopf\A1\AFs hypothesis of
making synapses &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;eligible&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;\A1\AAthe term he introduced\A1\AAfor modification by later re&amp;shy;ward
or punishment. He conjectured that these traces are implemented by molecular
mechanisms local to each synapse and therefore different from the electrical
activity of both the pre- and the postsynaptic neurons. In the Bibliographical
and Historical Remarks section of this chapter we bring attention to some
similar proposals made by others.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Klopf specifically conjectured that synaptic efficacies change in
the following way. When a neuron fires an action potential, all of its synapses
that were active in contributing to that action potential become eligible to
undergo changes in their efficacies. If the action potential is followed within
an appropriate time period by an increase of reward, the efficacies of all the
eligible synapses increase. Symmetrically, if the action potential is followed
within an appropriate time period by an increase of punishment, the efficacies
of eligible synapses decrease. This is implemented by triggering an eligibility
trace at a synapse upon a coincidence of presynaptic and postsynaptic activity
(or more exactly, upon pairing of presynaptic activity with the postsynaptic
activity that that presynaptic activity participates in causing)\A1\AAwhat we call a
contingent eligibility trace. This is essentially the three-factor learning
rule of an actor unit described in the previous section.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The shape and time course of an eligibility trace in Klopf\A1\AFs theory
reflects the dura&amp;shy;tions of the many feedback loops in which the neuron is
embedded, some of which lie entirely within the brain and body of the organism,
while others extend out through the organism\A1\AFs external environment as mediated
by its motor and sensory systems. His idea was that the shape of a synaptic
eligibility trace is like a histogram of the durations of the feedback loops in
which the neuron is embedded. The peak of an eligibility trace would then occur
at the duration of the most prevalent feedback loops in which that neuron
participates. The eligibility traces used by algorithms described in this book
are simplified versions of Klopf\A1\AFs original idea, being expo&amp;shy;nentially (or
geometrically) decreasing functions controlled by the parameters &lt;/span&gt;&lt;/span&gt;&lt;span
class=51MingLiU1&gt;&lt;span style=&#39;font-size:5.0pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;and Y. This simplifies simulations as well as
theory, but we regard these simple eligi&amp;shy;bility traces as a placeholders for
traces closer to Klopf\A1\AFs original conception, which would have computational
advantages in complex reinforcement learning systems by refining the
credit-assignment process.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Klopf\A1\AFs hedonistic neuron hypothesis is not as implausible as it may
at first appear. A well-studied example of a single cell that seeks some stimuli
and avoids others is the bacterium &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;Escherichia coli&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;. The movement of this single-cell organism is
influenced by chemical stimuli in its environment, behavior known as
chemotaxis. It swims in its liquid environment by rotating hairlike structures
called flagella attached to its surface. (Yes, it rotates them!) Molecules in
the bacterium\A1\AFs environment bind to receptors on its surface. Binding events
modulate the frequency with which the bacterium reverses flagellar rotation.
Each reversal causes the bacterium to tumble in place and then head off in a
random new direction. A little chemical memory and computation causes the
frequency of flagellar reversal to decrease when the bacterium swims toward
higher concentrations of molecules it needs to survive (attractants) and
increase when the bacterium swims toward higher concentrations of molecules
that are harmful (repellants). The result is that the bacterium tends to
persist in swimming up attractant gradients and tends to avoid swimming up
repellant gradients.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The chemotactic behavior just described is called klinokinesis. It
is a kind of trial- and-error behavior, although it is unlikely that learning
is involved: the bacterium needs a modicum of short-term memory to detect
molecular concentration gradients, but it probably does not maintain long-term
memories. Artificial intelligence pioneer Oliver Selfridge called this strategy
\A1\B0run and twiddle,\A1\B1 pointing out its utility as a basic adaptive strategy: \A1\B0keep
going in the same way if things are getting better, and otherwise move around\A1\B1&lt;/span&gt;&lt;/span&gt;&lt;span
class=51MingLiU&gt;&lt;span style=&#39;font-size:6.0pt;font-weight:normal&#39;&gt;\A3\A8&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;Selfridge, 1978, 1984). Similarly, one might think
of a neuron \A1\B0swimming\A1\B1 (not literally of course) in a medium composed of the
com&amp;shy;plex collection of feedback loops in which it is embedded, acting to obtain
one type of input signal and to avoid others. Unlike the bacterium, however,
the neuron\A1\AFs synaptic strengths retain information about its past
trial-and-error behavior. If this view of the behavior of a neuron (or just one
type of neuron) is plausible, then the closed-loop nature of how the neuron
interacts with its environment is important for understanding its behavior,
where the neuron\A1\AFs environment consists of the rest of the animal together with
the environment with which the animal as a whole interacts.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:30.35pt;
margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Klopf\A1\AFs hedonistic
neuron hypothesis extended beyond the idea that individual neurons are
reinforcement learning agents. He argued that many aspects of intelligent
behavior can be understood as the result of the collective behavior of a
population of &lt;/span&gt;&lt;/span&gt;&lt;span class=ac&gt;&lt;span lang=EN-US&gt;self-interested hedonistic
neurons interacting with one another in an immense society or economic system
making up an animal\A1\AFs nervous system. Whether or not this view of nervous
systems is useful, the collective behavior of reinforcement learning agents has
implications for neuroscience. We take up this subject next.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l52 level1 lfo84;tab-stops:58.1pt;background:transparent&#39;&gt;&lt;a
name=bookmark254&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;15.10&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=141&gt;&lt;span lang=EN-US&gt;Collective
Reinforcement Learning&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The behavior of populations of
reinforcement learning agents is deeply relevant to the study of social and
economic systems, and if anything like Klopf\A1\AFs hedonistic neuron hypothesis is
correct, to neuroscience as well. The hypothesis described above about how an
actor-critic algorithm might be implemented in the brain only narrowly
addresses the implications of the fact that the dorsal and ventral subdivisions
of the striatum, the respective locations of the actor and the critic according
to the hypothesis, each contain millions of medium spiny neurons whose synapses
undergo change modulated by phasic bursts of dopamine neuron activity.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;The actor in Figure 15.6a is a
single-layer network of k actor units. The actions produced by this network are
vectors (Ai, A&lt;/span&gt;&lt;span class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, \A1\F6 \A1\F6 \A1\F6 , Ak)&lt;sup&gt;T&lt;/sup&gt; presumed to drive the ani&amp;shy;mal\A1\AFs behavior.
Changes in the efficacies of the synapses of all of these units depend on the
reinforcement signal 5. Because actor units attempt to make 5 as large as
possible, 5 effectively acts as a reward signal for them (so in this case
reinforcement is the same as reward). Thus, each actor unit is itself a
reinforcement learning agent\A1\AA a hedonistic neuron if you will. Now, to make the
situation as simple as possible, assume that each of these units receives the
same reward signal at the same time (although, as indicated above, the
assumption that dopamine is released at all the corticostriatal synapses under
the same conditions and at the same times is likely an oversimplification).&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;What can reinforcement
learning theory tell us about what happens when all mem&amp;shy;bers of a population of
reinforcement learning agents learn according to a common reward signal? The
field of &lt;/span&gt;&lt;span class=CenturySchoolbookfc&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;multi-agent reinforcement learning&lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSff7&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;considers many as&amp;shy;pects of learning by populations of reinforcement
learning agents. Although this field is beyond the scope of this book, we
believe that some of its basic concepts and re&amp;shy;sults are relevant to thinking
about the the brain\A1\AFs diffuse neuromodulatory systems. In multi-agent
reinforcement learning (and in game theory), the scenario in which all the
agents try to maximize a common reward signal that they simultaneously receive
is known as a &lt;/span&gt;&lt;span class=CenturySchoolbookfc&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;cooperative game&lt;/span&gt;&lt;/span&gt;&lt;span
class=ArialUnicodeMSff7&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;or a &lt;/span&gt;&lt;span class=CenturySchoolbookfc&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;team problem.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;What makes a team problem interesting
and challenging is that the common re&amp;shy;ward signal sent to each agent evaluates
the &lt;/span&gt;&lt;span class=CenturySchoolbookfc&gt;&lt;span lang=EN-US style=&#39;font-size:
8.5pt&#39;&gt;pattern&lt;/span&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSff7&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;of activity produced by
the entire population, that is, it evaluates the &lt;/span&gt;&lt;span
class=CenturySchoolbookfc&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;collective
action&lt;/span&gt;&lt;/span&gt;&lt;span class=ArialUnicodeMSff7&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;of the team members.
This means that any individual agent has only limited ability to affect the
reward signal because any single agent contributes just one component of the
collective ac&amp;shy;tion evaluated by the common reward signal. Effective learning in
this scenario requires addressing a &lt;/span&gt;&lt;span class=CenturySchoolbookfc&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;structural credit assignment problem&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;: which team members, or groups of team members, deserve credit for
a favorable reward signal, or blame for an &lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection378&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;unfavorable
reward signal? It is a &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt&#39;&gt;cooperative&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt; game, or a team problem, because the agents are united in seeking
to increase the same reward signal: there are no conflicts of interest among
the agents. The scenario would be a &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;competitive game&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; if different agents receive different reward
signals, where each reward signal again evaluates the collective action of the
population, and the objective of each agent is to increase its own reward
signal. In this case there might be conflicts of interest among the agents,
meaning that actions that are good for some agents are bad for others. Even
deciding what the best collective action should be is a non-trivial aspect of
game theory. This competitive setting might be relevant to neuroscience too
(for example, to account for heterogeneity of dopamine neuron activity), but
here we focus only on the cooperative, or team, case.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;How can each reinforcement learning agent in a team learn to \A1\B0do the
right thing\A1\B1 so that the collective action of the team is highly rewarded? An
interesting result is that if each agent can learn effectively despite its
reward signal being corrupted by a large amount of noise, and despite its lack
of access to complete state infor&amp;shy;mation, then the population as a whole will
learn to produce collective actions that improve as evaluated by the common
reward signal, even when the agents cannot communicate with one another. Each
agent faces its own reinforcement learning task in which its influence on the
reward signal is deeply buried in the noise created by the influences of other
agents. In fact, for any agent, all the other agents are part of its
environment because its input, both the part conveying state information and
the reward part, depends on how all the other agents are behaving. Furthermore,
lacking access to the actions of the other agents, indeed lacking access to the
param&amp;shy;eters determining their policies, each agent can only partially observe
the state of its environment. This makes each team member\A1\AFs learning task very
difficult, but if each uses a reinforcement learning algorithm able to increase
a reward signal even under these difficult conditions, teams of reinforcement
learning agents can learn to produce collective actions that improve over time
as evaluated by the team\A1\AFs common reward signal.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;If the team members are neuron-like units, then each unit has to
have the goal of increasing the amount of reward it receives over time, as the
actor unit does that we described in Section 15.8. Each unit\A1\AFs learning
algorithm has to have two essential features. First, it has to use contingent
eligibility traces. Recall that a contingent eligibility trace, in neural
terms, is initiated (or increased) at a synapse when its presynaptic input
participates in causing the postsynaptic neuron to fire. A non&amp;shy;contingent
eligibility trace, in contrast, is initiated or increased by presynaptic input
independently of what the postsynaptic neuron does. As explained in Section
15.8, by keeping information about what actions were taken in what states,
contingent eligibility traces allow credit for reward, or blame for punishment,
to be apportioned to an agent\A1\AFs policy parameters according to the contribution
the values of these parameters made in determining the agent\A1\AFs action. By
similar reasoning, a team member must remember its recent action so that it can
either increase or decrease the likelihood of producing that action according
to the reward signal that is subse&amp;shy;quently received. The action component of a
contingent eligibility trace implements this action memory. Because of the
complexity of the learning task, however, con&amp;shy;tingent eligibility is merely a
preliminary step in the credit assignment process: the relationship between a
single team member\A1\AFs action and changes in the team\A1\AFs re&amp;shy;ward signal is a
statistical correlation that has to be estimated over many trials. Contingent
eligibility is an essential but preliminary step in this process.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Learning with non-contingent eligibility traces does not work at all
in the team setting because it does not provide a way to correlate actions with
consequent changes in the reward signal. Non-contingent eligibility traces are
adequate for learning to predict, as the critic component of the actor-critic
algorithm does, but they do not support learning to control, as the actor
component must do. The members of a population of critic-like agents may still
receive a common reinforcement signal, but they would all learn to predict the
same quantity (which in the case of an actor-critic method, would be the
expected return for the current policy). How successful each member of the
population would be in learning to predict the expected return would depend on
the information it receives, which could be very different for different
members of the population. There would be no need for the population to produce
differentiated patterns of activity. This is not a team problem as defined
here.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;A second requirement for collective learning in a team problem is
that there has to be variability in the actions of the team members in order
for the team to explore the space of collective actions. The simplest way for a
team of reinforcement learning agents to do this is for each member to
independently explore its own action space through persistent variability in
its output. This will cause the team as a whole to vary its collective actions.
For example, a team of the actor units described in Section 15.8 explores the
space of collective actions because the output of each unit, being a
Bernoulli-logistic unit, probabilistically depends on the weighted sum of its
input vector\A1\AFs components. The weighted sum biases firing probability up or
down, but there is always variability. Because each unit uses a REINFORCE
policy gradient algorithm (Chapter 13), each unit adjusts its weights with the
goal of maximizing the average reward rate it experiences while stochastically
exploring its own action space. One can show, as Williams (1992) did, that a
team of Bernoulli-logistic REINFORCE units implements a policy gradient
algorithm &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:
8.5pt;font-weight:normal&#39;&gt;as a whole&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt; with respect to average rate of the team\A1\AFs common reward signal,
where the actions are the collective actions of the team.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Further, Williams (1992) showed that a team of Bernoulli-logistic
units using RE&amp;shy;INFORCE ascends the average reward gradient when the units in
the team are interconnected to form a multilayer neural network. In this case,
the reward signal is broadcast to all the units in the network, though reward
may depend only on the collective actions of the network\A1\AFs output units. This
means that a multilayer team of Bernoulli-logistic REINFORCE units learns like
a multilayer network trained by the widely-used error backpropagation method,
but in this case the backpropagation process is replaced by the broadcasted
reward signal. In practice, the error backprop- agation method is considerably
faster, but the reinforcement learning team method is more plausible as a
neural mechanism, especially in light of what is being learned about
reward-modulated STDP as discussed in Section 15.8.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Exploration through independent exploration by team members is only
the sim&amp;shy;plest way for a team to explore; more sophisticated methods are
possible if the team members communicate with one another so that they can
coordinate their actions to focus on particular parts of the collective action
space. There are also mechanisms more sophisticated than contingent eligibility
traces for addressing structural credit assignment, which is easier in a team
problem when the set of possible collective actions is restricted in some way.
An extreme case is a winner-take-all arrangement (for example, the result of
lateral inhibition in the brain) that restricts collective actions to those to
which only one, or a few, team members contribute. In this case the winners get
the credit or blame for resulting reward or punishment.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:30.35pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Details of
learning in cooperative games (or team problems) and non-cooperative game
problems are beyond the scope of this book. The Bibliographical and Historical
Remarks section at the end of this chapter cites a selection of the relevant
publica&amp;shy;tions, including extensive references to research on implications for
neuroscience of collective reinforcement learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l52 level1 lfo84;tab-stops:57.85pt;background:transparent&#39;&gt;&lt;a
name=bookmark255&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;15.11&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=141&gt;&lt;span lang=EN-US&gt;Model-based
Methods in the Brain&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Reinforcement
learning\A1\AFs distinction between model-free and model-based algorithms is proving
to be useful for thinking about animal learning and decision processes. Section
14.6 discusses how this distinction aligns with that between habitual and
goal-directed animal behavior. The hypothesis discussed above about how the
brain might implement an actor-critic algorithm is relevant only to an animal\A1\AFs
habitual mode of behavior because the basic actor-critic method is model-free.
What neural mechanisms are responsible for producing goal-directed behavior,
and how do they interact with those underlying habitual behavior?&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;One way to investigate questions about the brain structures involved
in these modes of behavior is to inactivate an area of a rat\A1\AFs brain and then
observe what the rat does in an outcome-devaluation experiment (Section 14.6).
Results from experiments like these indicate that the actor-critic hypothesis
described above is too simple in placing the actor in the dorsal striatum.
Inactivating one part of the dorsal striatum, the dorsolateral striatum (DLS),
impairs habit learning, causing the animal to rely more on goal-directed
processes. On the other hand, inactivating the dorsomedial striatum (DMS)
impairs goal-directed processes, requiring the animal to rely more on habit
learning. Results like these support the view that the DLS in rodents is more
involved in model-free processes, whereas their DMS is more involved in
model-based processes. Results of studies with human subjects in similar
experiments using functional neuroimaging, and with non-human primates, support
the view that the analogous structures in the primate brain are differentially
involved in habitual and goal-directed modes of behavior.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Other studies identify activity associated with model-based
processes in the pre- frontal cortex of the human brain, the front-most part of
the frontal cortex impli&amp;shy;cated in executive function, including planning and
decision making. Specifically implicated is the orbitofrontal cortex (OFC), the
part of the prefrontal cortex imme&amp;shy;diately above the eyes. Functional
neuroimaging in humans, and also recordings of the activities of single neurons
in monkeys, reveals strong activity in the OFC related to the subjective reward
value of biologically significant stimuli, as well as activity related to the
reward expected as a consequence of actions. Although not free of controversy,
these results suggest significant involvement of the OFC in goal-directed
choice. It may be critical for the reward part of an animal\A1\AFs environment
model.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Another structure involved in model-based behavior is the
hippocampus, a struc&amp;shy;ture critical for memory and spatial navigation. A rat\A1\AFs
hippocampus plays a critical role in the rat\A1\AFs ability to navigate a maze in
the goal-directed manner that led Tolman to the idea that animals use models,
or cognitive maps, in selecting actions (Section 14.5). The hippocampus may
also be a critical component of our human ability to imagine new experiences
(Hassabis and Maguire, 2007; Olafsd&lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;ttir, Barry, Saleem, Hassabis, and Spiers, 2105).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The findings that most directly implicate the hippocampus in
planning\A1\AAthe pro&amp;shy;cess needed to enlist an environment model in making
decisions\A1\AAcome from exper&amp;shy;iments that decode the activity of neurons in the
hippocampus to determine what part of space hippocampal activity is
representing on a moment-to-moment basis. When a rat pauses at a choice point
in a maze, the representation of space in the hippocampus sweeps forward (and not
backwards) along the possible paths the ani&amp;shy;mal can take from that point
(Johnson and Redish, 2007). Furthermore, the spatial trajectories represented
by these sweeps closely correspond to the rat\A1\AFs subsequent navigational
behavior (Pfeiffer and Foster, 2013). These results suggest that the hip&amp;shy;pocampus
is critical for the state-transition part of an animal\A1\AFs environment model, and
that it is part of a system that uses the model to simulate possible future
state sequences to assess the consequences of possible courses of action: a
form of planning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The results described above add to a voluminous literature on neural
mechanisms underlying goal-directed, or model-based, learning and decision
making, but many questions remain unanswered. For example, how can areas as
structurally similar as the DLS and DMS be essential components of modes of
learning and behavior that are as different as model-free and model-based
algorithms? Are separate structures re&amp;shy;sponsible for (what we call) the
transition and reward components of an environment model? Is all planning
conducted at decision time via simulations of possible future courses of action
as the forward sweeping activity in the hippocampus suggests? In other words,
is all planning something like a rollout algorithm (Section 8.10)? Or are
models sometimes engaged in the background to refine or recompute value infor&amp;shy;mation
as illustrated by the Dyna architecture (Section 8.2)? How does the brain
arbitrate between the use of the habit and goal-directed systems? Is there, in
fact, a clear separation between the neural substrates of these systems?&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The evidence is not pointing to a positive answer to this last
question. Summariz&amp;shy;ing the situation, Doll, Simon, and Daw (2012) wrote that
\A1\B0model-based influences appear ubiquitous more or less wherever the brain
processes reward information,\A1\B1 and this is true even in the regions thought to
be critical for model-free learning. This includes the dopamine signals
themselves, which can exhibit the influence of &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:#141414;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection379&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;model-based information in addition to the reward prediction errors
thought to be the basis of model-free processes.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-bottom:30.35pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Continuing neuroscience research informed by reinforcement
learning\A1\AFs model-free and model-based distinction has the potential to sharpen
our understanding of ha&amp;shy;bitual and goal-directed processes in the brain. A
better grasp of these neural mech&amp;shy;anisms may lead to algorithms combining
model-free and model-based methods in ways that have not yet been explored in
computational reinforcement learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=1230 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l52 level1 lfo84;tab-stops:57.6pt;background:transparent&#39;&gt;&lt;a
name=bookmark256&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;15.12&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Addiction&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Understanding the
neural basis of drug abuse is a high-priority goal of neuroscience with the
potential to produce new treatments for this serious public health problem. One
view is that drug craving is the result of the same motivation and learning
processes that lead us to seek natural rewarding experiences that serve our
biological needs. Addictive substances, by being intensely reinforcing,
effectively co-opt our natural mechanisms of learning and decision making. This
is plausible given that many\A1\AAthough not all\A1\AAdrugs of abuse increase levels of
dopamine either directly or indirectly in regions around terminals of dopamine
neuron axons in the striatum, a brain structure firmly implicated in normal
reward-based learning (Section 15.7). But the self-destructive behavior
associated with drug addiction is not characteristic of normal learning. What
is different about dopamine-mediated learning when the reward is the result of
an addictive drug? Is addiction the result of normal learning in response to
substances that were largely unavailable throughout our evolutionary history,
so that evolution could not select against their damaging effects? Or do
addictive substances somehow interfere with normal dopamine-mediated learning?&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;The reward
prediction error hypothesis of dopamine neuron activity and its con&amp;shy;nection to
TD learning are the basis of a model due to Redish (2004) of some\A1\AAbut certainly
not all\A1\AAfeatures of addiction. The model is based on the observation that
administration of cocaine and some other addictive drugs produces a transient
in&amp;shy;crease in dopamine. In the model, this dopamine surge is assumed to increase
the TD error, 5, in a way that cannot be cancelled out by changes in the value
function. In other words, whereas 5 is reduced to the degree that a normal
reward is pre&amp;shy;dicted by antecedent events (Section 15.6), the contribution to 5
due to an addictive stimulus does not decrease as the reward signal becomes
predicted: drug rewards cannot be \A1\B0predicted away.\A1\B1 The model does this by
preventing 5 from ever becom&amp;shy;ing negative when the reward signal is due to an
addictive drug, thus eliminating the error-correcting feature of TD learning
for states associated with administration of the drug. The result is that the
values of these states increase without bound, making actions leading to these
states preferred above all others.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-bottom:30.35pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Addictive behavior is much more complicated than this result from
Redish\A1\AFs model, but the model\A1\AFs main idea may be a piece of the puzzle. Or the
model might be mis&amp;shy;leading. Dopamine appears not to play a critical role in all
forms of addiction, and not everyone is equally susceptible to developing
addictive behavior. Moreover, the model does not include the changes in many
circuits and brain regions that accom&amp;shy;pany chronic drug taking, for example,
changes that lead to a drug\A1\AFs diminishing effect with repeated use. It is also
likely that addiction involves model-based pro&amp;shy;cesses. Still, Redish\A1\AFs model
illustrates how reinforcement learning theory can be enlisted in the effort to
understand a major health problem. In a similar manner, reinforcement learning
theory has been influential in the development of the new field of
computational psychiatry, which aims to improve understanding of mental
disorders through mathematical and computational methods.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l52 level1 lfo84;tab-stops:58.1pt;background:transparent&#39;&gt;&lt;a
name=bookmark257&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;15.13&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=141&gt;&lt;span lang=EN-US&gt;Summary&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;The neural
pathways involved in the brain\A1\AFs reward system are complex and incom&amp;shy;pletely
understood, but neuroscience research directed toward understanding these
pathways and their roles in behavior is progressing rapidly. This research is
reveal&amp;shy;ing striking correspondences between the brain\A1\AFs reward system and the
theory of reinforcement learning as presented in this book.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;reward prediction error hypothesis
of dopamine neuron activity&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt; was
proposed by scientists who recognized striking parallels between the behavior
of TD errors and the activity of neurons that produce dopamine, a
neurotransmitter essential in mammals for reward-related learning and behavior.
Experiments conducted in the late 1980s and 1990s in the laboratory of
neuroscientist Wolfram Schultz showed that dopamine neurons respond to
rewarding events with substantial bursts of activity, called phasic responses,
only if the animal does not expect those events, suggesting that dopamine
neurons are signaling reward prediction errors instead of reward itself.
Further, these experiments showed that as an animal learns to predict a
rewarding event on the basis of preceding sensory cues, the phasic activity of
dopamine neurons shifts to earlier predictive cues while decreasing to later
predictive cues. This parallels the backup action of the TD error as a
reinforcement learning agent learns to predict reward.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Other experimental results firmly establish that the phasic activity
of dopamine neurons is a reinforcement signal for learning that reaches
multiple areas of the brain by means of profusely branching axons of dopamine
producing neurons. These results are consistent with the distinction we make
between a reward signal, Rt, and a reinforcement signal, which is the TD error
5t in most of the algorithms we present. Phasic responses of dopamine neurons
are reinforcement signals, not reward signals.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;A prominent hypothesis is that the brain implements something like
an actor-critic algorithm. Two structures in the brain (the dorsal and ventral
subdivisions of the striatum), both of which play critical roles in
reward-based learning, may function respectively like an actor and a critic.
That the TD error is the reinforcement signal for both the actor and the critic
fits well with the facts that dopamine neuron axons target both the dorsal and
ventral subdivisions of the striatum; that dopamine appears to be critical for
modulating synaptic plasticity in both structures; and that the effect on a
target structure of a neuromodulator such as dopamine depends on&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d align=left style=&#39;margin-bottom:1.05pt;text-align:left;line-height:
9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;properties of the target structure and not just on properties of the
neuromodulator.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The actor and the critic can be implemented by artificial neural
networks consist&amp;shy;ing of neuron-like units having learning rules based on the
policy-gradient actor-critic method described in Section 13.5. Each connection
in these networks is like a synapse between neurons in the brain, and the
learning rules correspond to rules governing how synaptic efficacies change as
functions of the activities of the presynaptic and the postsynaptic neurons,
together with neuromodulatory input corresponding to input from dopamine
neurons. In this setting, each synapse has its own eligibility trace that
records past activity involving that synapse. The only difference between the
actor and critic learning rules is that they use different kinds of eligibility
traces: the critic unit\A1\AFs traces are &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:
normal&#39;&gt;non-contingent&lt;/span&gt;&lt;/span&gt;&lt;span class=5175pt&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;because they do not involve the critic unit\A1\AFs output, whereas the
actor unit\A1\AFs traces are &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook2&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;contingent&lt;/span&gt;&lt;/span&gt;&lt;span
class=5175pt&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;because in addition to the actor unit\A1\AFs input, they
depend on the the actor unit\A1\AFs output. In the hypothetical implementation of an
actor-critic system in the brain, these learning rules respec&amp;shy;tively correspond
to rules governing plasticity of corticostriatal synapses that convey signals
from the cortex to the principal neurons in the dorsal and ventral striatal
subdivisions, synapses that also receive inputs from dopamine neurons.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The learning rule of an actor unit in the actor-critic network
closely corresponds to &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook2&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;reward-modulated
spike-timing-dependent plasticity&lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt4&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;In spike-timing-dependent plas&amp;shy;ticity (STDP), the
relative timing of pre- and postsynaptic activity determines the direction of
synaptic change. In reward-modulated STDP, changes in synapses in addition
depend on a neuromodulator, such as dopamine, arriving within a time window
that can last up to 10 seconds after the conditions for STDP are met. Evi&amp;shy;dence
accumulating that reward-modulated STDP occurs at corticostriatal synapses,
where the actor\A1\AFs learning takes place in the hypothetical neural
implementation of an actor-critic system, adds to the plausibility of the
hypothesis that something like an actor-critic system exists in the brains of
some animals.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The idea of synaptic eligibility and basic features of the actor
learning rule de&amp;shy;rive from Klopf\A1\AFs hypothesis of the \A1\B0hedonistic neuron\A1\B1
(Klopf, 1972, 1981). He conjectured that individual neurons seek to obtain
reward and to avoid punishment by adjusting the efficacies of their synapses on
the basis of rewarding or punishing consequences of their action potentials. A
neuron\A1\AFs activity can affect its later input because the neuron is embedded in
many feedback loops, some within the animal\A1\AFs nervous system and body and
others passing through the animal\A1\AFs external environ&amp;shy;ment. Klopf\A1\AFs idea of
eligibility is that synapses are temporarily marked as eligible for
modification if they participated in the neuron\A1\AFs firing (making this the
contin&amp;shy;gent form of eligibility trace). A synapse\A1\AFs efficacy is modified if a
reinforcing signal arrives while the synapse is eligible. We alluded to the
chemotactic behavior of a bacterium as an example of a single cell that directs
its movements in order to seek some molecules and to avoid others.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;A conspicuous feature of the dopamine system is that fibers
releasing dopamine project widely to multiple parts of the brain. Although it
is likely that only some populations of dopamine neurons broadcast the same
reinforcement signal, if this signal reaches the synapses of many neurons
involved in actor-type learning, then the situation can be modeled as a &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;team
problem.&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt; In this type of
problem, each agent in a collection of reinforcement learning agents receives
the same reinforcement signal, where that signal depends on the activities of
all members of the collection, or team. If each team member uses a sufficiently
capable learning algorithm, the team can learn collectively to improve
performance of the entire team as evaluated by the globally-broadcast
reinforcement signal, even if the team members do not directly communicate with
one another. This is consistent with the wide dispersion of dopamine signals in
the brain and provides a neurally plausible alternative to the widely-used
error-backpropagation method for training multilayer networks.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The distinction between model-free and model-based reinforcement
learning is helping neuroscientists investigate the neural bases of habitual
and goal-directed learning and decision making. Research so far points to their
being some brain re&amp;shy;gions more involved in one type of process than the other,
but the picture remains unclear because model-free and model-based processes do
not appear to be neatly separated in the brain. Many questions remain
unanswered. Perhaps most intriguing is evidence that the hippocampus, a
structure traditionally associated with spatial navigation and memory, appears
to be involved in simulating possible future courses of action as part of an
animal\A1\AFs decision-making process. This suggests that it is part of a system
that uses an environment model for planning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Reinforcement learning theory is also influencing thinking about
neural processes underlying drug abuse. A model of some features of drug
addiction is based on the reward prediction error hypothesis. It proposes that
an addicting stimulant, such as cocaine, destabilizes TD learning to produce
unbounded growth in the values of actions associated with drug intake. This is
far from a complete model of addiction, but it illustrates how a computational
perspective suggests theories that can be tested with further research. The new
field of computational psychiatry similarly focuses on the use of computational
models, some derived from reinforcement learning, to better understand mental
disorders.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;This chapter only touched the surface of how the neuroscience of
reinforcement learning and the development of reinforcement learning in
computer science and engineering have influenced one another. Most features of
reinforcement learning algorithms owe their design to purely computational
considerations, but some have been influenced by hypotheses about neural
learning mechanisms. Remarkably, as experimental data has accumulated about the
brain\A1\AFs reward processes, many of the purely computationally-motivated features
of reinforcement learning algorithms are turning out to be consistent with
neuroscience data. Other features of compu&amp;shy;tational reinforcement learning,
such eligibility traces and the ability of teams of reinforcement learning
agents to learn to act collectively under the influence of a globally-broadcast
reinforcement signal, may also turn out to parallel experimental data as
neuroscientists continue to unravel the neural basis of reward-based animal
learning and behavior.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:#141414;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection380&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:36.0pt;text-indent:-36.0pt;line-height:13.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a name=bookmark258&gt;&lt;span class=141&gt;&lt;span
lang=EN-US&gt;Bibliographical and Historical Remarks&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;The number of
publications treating parallels between the neuroscience of learning and
decision making and the approach to reinforcement learning presented in this
book is enormous. We can cite only a small selection. Niv (2009), Dayan and Niv&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;mso-list:l23 level1 lfo88;tab-stops:39.4pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;color:
black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;(2008)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;, Gimcher
(2011), Ludvig, Bellemare, and Pearson (2011), and Shah (2012) are good places
to start.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Together with
economics, evolutionary biology, and mathematical psychology, re&amp;shy;inforcement
learning theory is helping to formulate quantitative models of the neural
mechanisms of choice in humans and non-human primates. With its focus on learn&amp;shy;ing,
this chapter only lightly touches upon the neuroscience of decision making.
Glimcher (2003) introduced the field of \A1\B0neuroeconomics,\A1\B1 in which
reinforcement learning contributes to the study of the neural basis of decision
making from an eco&amp;shy;nomics perspective. See also Glimcher and Fehr (2013). The
text on computational and mathematical modeling in neuroscience by Dayan and
Abbott (2001) includes reinforcement learning\A1\AFs role in these approaches.
Sterling and Laughlin (2015) ex&amp;shy;amined the neural basis of learning in terms of
general design principles that enable efficient adaptive behavior.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l63 level1 lfo89;tab-stops:36.45pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;color:black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;15.1&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;There are many good expositions of basic
neuroscience. Kandel, Schwartz, Jessell, Siegelbaum, and Hudspeth (2013) is an
authoritative and very com&amp;shy;prehensive source.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l63 level1 lfo89;tab-stops:36.45pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;color:black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;15.2&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;Berridge and Kringelbach (2008) reviewed the neural
basis of reward and pleasure, pointing out that reward processing has many
dimensions and in&amp;shy;volves many neural systems. Space prevents discussion of the
influential research of Berridge and Robinson (1998), who distinguish between
the he&amp;shy;donic impact of a stimulus, which they call \A1\B0liking,\A1\B1 and the
motivational effect, which they call \A1\B0wanting.\A1\B1 Hare, O\A1\AFDoherty, Camerer,
Schultz, and Rangel (2008) examined the neural basis of value-related signals
from an eco&amp;shy;nomic perspective, distinguishing between goal values, decision
values, and prediction errors. Decision value is goal value minus action cost.
See also Rangel, Camerer, and Montague (2008), Rangel and Hare (2010), and
Peters and Biichel (2010).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.0pt;
margin-left:36.0pt;text-indent:-36.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l63 level1 lfo89;tab-stops:36.45pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;color:black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;15.3&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;The reward prediction error hypothesis of dopamine
neuron activity is most prominently discussed by Schultz, Montague, and Dayan
(1997). The hy&amp;shy;pothesis was first explicitly put forward by Montague, Dayan,
and Sejnowski (1996). As they stated the hypothesis, it referred to reward
prediction errors (RPEs) but not specifically to TD errors; however, their
development of the hypothesis made it clear that they were referring to TD
errors. The earliest recognition of the TD-error/dopamine connection of which
we are aware is that of Montague, Dayan, Nowlan, Pouget, and Sejnowski (1992),
who pro&amp;shy;posed a TD-error-modulated Hebbian learning rule motivated by results
on dopamine signaling from Schultz\A1\AFs group. The connection was also pointed out
in an abstract by Quartz, Dayan, Montague, and Sejnowski (1992). Mon&amp;shy;tague and
Sejnowski (1994) emphasized the importance of prediction in the brain and
outlined how predictive Hebbian learning modulated by TD er&amp;shy;rors could be
implemented via a diffuse neuromodulatory system, such as the dopamine system.
Friston, Tononi, Reeke, Sporns, and Edelman (1994) presented a model of
value-dependent learning in the brain in which synaptic changes are mediated by
a TD-like error provided by a global neuromodula- tory signal (although they
did not single out dopamine). Montague, Dayan, Person, and Sejnowski (1995)
presented a model of honeybee foraging using the TD error. The model is based
on research by Hammer, Menzel, and colleagues (Hammer and Menzel, 1995; Hammer,
1997) showing that the neuromodulator octopamine acts as a reinforcement signal
in the honeybee. Montague et al. (1995) pointed out that dopamine likely plays
a similar role in the vertebrate brain. Barto (1995) related the actor-critic
architecture to basal-ganglionic circuits and discussed the relationship
between TD learn&amp;shy;ing and the main results from Schultz\A1\AFs group. Houk, Adams,
and Barto (1995) suggested how TD learning and the actor-critic architecture
might map onto the anatomy, physiology, and molecular mechanism of the basal
ganglia. Doya and Sejnowski (1998) extended their earlier paper on a model of
birdsong learning (Doya and Sejnowski, 1994) by including a TD-like er&amp;shy;ror
identified with dopamine to reinforce the selection of auditory input to be
memorized. O\A1\AFReilly and Frank (2006) and O\A1\AFReilly, Frank, Hazy, and Watz (2007)
argued that phasic dopamine signals are RPEs but not TD er&amp;shy;rors. In support of
their theory they cited results with variable interstimulus intervals that do
not match predictions of a simple TD model, as well as the observation that
higher-order conditioning beyond second-order condi&amp;shy;tioning is rarely observed,
while TD learning is not so limited. Dayan and Niv (2008) discussed \A1\B0the good,
the bad, and the ugly\A1\B1 of how reinforcement learning theory and the reward
prediction error hypothesis align with exper&amp;shy;imental data. Glimcher (2011)
reviewed the empirical findings that support the reward prediction error
hypothesis and emphasized the significance of the hypothesis for contemporary
neuroscience.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-left:36.0pt;text-indent:-35.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;mso-list:l63 level1 lfo89;tab-stops:36.75pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;color:
black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;15.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Graybiel (2000)
is a brief primer on the basal ganglia. The experiments mentioned that involve
optogenetic activation of dopamine neurons were con&amp;shy;ducted by Tsai, Zhang,
Adamantidis, Stuber, Bonci, de Lecea, and Deisseroth (2009), Steinberg,
Keiflin, Boivin, Witten, Deisseroth, and Janak (2013), and Claridge-Chang,
Roorda, Vrontou, Sjulson, Li, Hirsh, and Miesenbock&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:9.0pt;
margin-left:36.0pt;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l23 level1 lfo88;tab-stops:75.1pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;color:black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;(2009)&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;. Fiorillo, Yun, and Song (2013), Lammel, Lim, and
Malenka (2014), and Saddoris, Cacciapaglia, Wightmman, and Carelli (2015) are
among stud&amp;shy;ies showing that the signaling properties of dopamine neurons are
specialized for different target regions. RPE-signaling neurons may belong to
one among multiple populations of dopamine neurons having different targets and
sub&amp;shy;serving different functions. Eshel, Tian, Bukwich, and Uchida (2016) found
homogeneity of reward prediction error responses of dopamine neurons in the
lateral VTA during classical conditioning in mice, tough their results do not
rule out response diversity across wider areas. Gershman, Pesaran, and Daw
(2009) studied reinforcement learning tasks that can be decomposed into
independent components with separate reward signals, finding evidence in human
neuroimaging data suggesting that the brain exploits this kind of structure.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:8.8pt;
margin-left:36.0pt;text-indent:-35.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l63 level1 lfo89;tab-stops:36.6pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;color:black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;15.5&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;Schultz\A1\AFs 1998 survey article (Schultz, 1998) is a
good entree into the very extensive literature on reward predicting signaling
of dopamine neurons. Berns, McClure, Pagnoni, and Montague (2001), Breiter,
Aharon, Kahne- man, Dale, and Shizgal (2001), Pagnoni, Zink, Montague, and
Berns (2002), and O\A1\AFDoherty, Dayan, Friston, Critchley, and Dolan (2003)
described func&amp;shy;tional brain imaging studies supporting the existence of signals
like TD errors in the human brain.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.2pt;
margin-left:36.0pt;text-indent:-35.0pt;mso-list:l63 level1 lfo89;tab-stops:
36.6pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US
style=&#39;color:black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;15.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;This section
roughly follows Barto (1995) in explaining how TD errors mimic the main results
from Schultz\A1\AFs group on the phasic responses of dopamine neurons.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;text-indent:-35.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;mso-list:l63 level1 lfo89;tab-stops:36.6pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;color:
black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;15.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;This section is
largely based on Takahashi, Schoenbaum, and Niv (2008) and Niv (2009). To the
best of our knowledge, Barto (1995) and Houk, Adams, and Barto (1995) first
speculated about possible implementations of actor- critic algorithms in the
basal ganglia. On the basis of functional magnetic resonance imaging of human
subjects while engaged in instrumental condi&amp;shy;tioning, O\A1\AFDoherty, Dayan,
Schultz, Deichmann, Friston, and Dolan (2004) suggested that the actor and the
critic are most likely located respectively in the dorsal and ventral striatum.
Gershman, Moustafa, and Ludvig (2013) focused on how time is represented in
reinforcement learning models of the basal ganglia, discussing evidence for,
and implications of, various computa&amp;shy;tional approaches to time representation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.0pt;
margin-left:36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;The hypothetical neural
implementation of the actor-critic architecture de&amp;shy;scribed in this section
includes very little detail about known basal ganglia anatomy and physiology.
In addition to the more detailed hypothesis of Houk, Adams, and Barto (1995), a
number of other hypotheses include more specific connections to anatomy and
physiology and are claimed to explain additional data. These include hypotheses
proposed by Suri and Schultz (1998, 1999), Brown, Bullock, and Grossberg
(1999), Contreras-Vidal and Schultz (1999), Suri, Bargas, and Arbib (2001),
O\A1\AFReilly and Frank (2006), and O\A1\AFReilly, Frank, Hazy, and Watz (2007). Joel,
Niv, and Ruppin (2002) critically evaluated the anatomical plausibility of
several of these models and present an alternative intended to accommodate some
neglected features of basal ganglionic circuitry.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:36.0pt;text-indent:-35.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l63 level1 lfo89;tab-stops:36.6pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;color:black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;15.8&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;The actor learning rule discussed here is more
complicated than the one in the early actor-critic network of Barto et al.
(1983). Actor-unit eligi&amp;shy;bility traces in that network were traces of just A x
x(s) instead of the full (A \A1\AA n(A|S, w))x(s). That work did not benefit from
the policy-gradient the&amp;shy;ory presented in Chapter 13 or the contributions of
Williams (1986, 1992), who showed how an artificial neural network of
Bernoulli-logistic units could implement a policy-gradient method.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Reynolds and
Wickens (2002) proposed a three-factor rule for synaptic plas&amp;shy;ticity in the
corticostriatal pathway in which dopamine modulates changes in corticostriatal
synaptic efficacy. They discussed the experimental support for this kind of
learning rule and its possible molecular basis. The definitive demonstration of
spike-timing-dependent plasticity (STDP) is attributed to Markram, Liibke,
Frotscher, and Sakmann (1997), with evidence from earlier experiments by Levy
and Steward (1983) and others that the relative timing of pre- and postsynaptic
spikes is critical for inducing changes in synaptic effi&amp;shy;cacy. Rao and
Sejnowski (2001) suggested how STDP could be the result of a TD-like mechanism
at synapses with non-contingent eligibility traces lasting about 10
milliseconds. Dayan (2002) commented that this would require an error as in
Sutton and Barto\A1\AFs (1981) early model of classical conditioning and not a true
TD error. Representative publications from the extensive litera&amp;shy;ture on
reward-modulated STDP are Wickens (1990), Reynolds and Wickens (2002), and
Calabresi, Picconi, Tozzi and Di Filippo (2007). Pawlak and Kerr (2008) showed
that dopamine is necessary to induce STDP at the corticos- triatal synapses of
medium spiny neurons. See also Pawlak, Wickens, Kirk&amp;shy;wood, and Kerr (2010).
Yagishita, Hayashi-Takagi, Ellis-Davies, Urakubo, Ishii, and Kasai (2014) found
that dopamine promotes spine enlargement of the medium spiny neurons of mice
only during a time window of from 0.3 to&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.0pt;
margin-left:36.0pt;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l30 level1 lfo85;tab-stops:45.35pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;color:black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;2&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;seconds after STDP stimulation. Izhikevich (2007)
proposed and explored the idea of using STDP timing conditions to trigger
contingent eligibility traces.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.0pt;
margin-left:36.0pt;text-indent:-35.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;mso-list:l63 level1 lfo89;tab-stops:36.3pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;color:black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;15.9&lt;span
style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;Klopf\A1\AFs hedonistic neuron hypothesis (Klopf 1972,
1982) inspired our actor- critic algorithm implemented as an artificial neural
network with a single neuron-like unit, called the actor unit, implementing a
Law-of-Effect-like learning rule (Barto, Sutton, and Anderson, 1983). Ideas
related to Klopf\A1\AFs synaptically-local eligibility have been proposed by others.
Crow (1968) pro&amp;shy;posed that changes in the synapses of cortical neurons are
sensitive to the consequences of neural activity. Emphasizing the need to
address the time delay between neural activity and its consequences in a
reward-modulated form of synaptic plasticity, he proposed a contingent form of
eligibility, but associated with entire neurons instead of individual synapses.
According to his hypothesis, a wave of neuronal activity&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:25.0pt;margin-bottom:0cm;
margin-left:60.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;leads to a
short-term change in the cells involved in the wave such that they are picked
out from a background of cells not so activated.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:25.0pt;margin-bottom:0cm;
margin-left:60.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;... such cells
are rendered sensitive by the short-term change to a reward signal ... in such
a way that if such a signal occurs before the end of the decay time of the
change the synaptic connexions&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:#141414;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection381&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.25pt;
margin-left:25.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;between the cells are made more
effective. (Crow, 1968)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:2.8pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Crow argued against previous
proposals that reverberating neural circuits play this role by pointing out
that the effect of a reward signal on such a cir&amp;shy;cuit would \A1\B0...establish the
synaptic connexions leading to the reverberation (that is to say, those
involved in activity at the time of the reward signal) and not those on the
path which led to the adaptive motor output.\A1\B1 Crow fur&amp;shy;ther postulated that
reward signals are delivered via a \A1\B0distinct neural fiber system,\A1\B1 presumably
the one into which Olds and Milner (1954) tapped, that would transform synaptic
connections \A1\B0from a short into a long-term form.\A1\B1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.2pt;
margin-left:0cm;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;In
another farsighted hypothesis, Miller (1981) proposed a Law-of-Effect-like
learning rule that includes synaptically-local contingent eligibility traces:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:25.0pt;margin-bottom:0cm;
margin-left:25.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;... it is
envisaged that in a particular sensory situation neurone B, by chance, fires a
\A1\AEmeaningful burst\A1\AF of activity, which is then trans&amp;shy;lated into motor acts,
which then change the situation. It must be supposed that the meaningful burst
has an influence, &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;at the neu&amp;shy;ronal level&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;, on all of its own synapses which are active at the
time ... thereby making a preliminary selection of the synapses to be
strengthened, though not yet actually strengthening them. ...The strengthening
signal ... makes the final selection ... and accom&amp;shy;plishes the definitive
change in the appropriate synapses. (Miller,&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.05pt;
margin-left:25.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;1981, p. 81)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Miller\A1\AFs hypothesis also included
a critic-like mechanism, which he called a \A1\B0sensory analyzer unit,\A1\B1 that worked
according to classical conditioning principles to provide reinforcement signals
to neurons so that they would learn to move from lower- to higher-valued
states, thus anticipating the use of the TD error as a reinforcement signal in
the actor-critic architecture. Miller\A1\AFs idea not only parallels Klopf\A1\AFs (with
the exception of its explicit invocation of a distinct \A1\B0strengthening signal\A1\B1),
it also anticipated the general features of reward-modulated STDP.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:3.0pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;A related though different idea,
which Seung (2003) called the \A1\B0hedonistic synapse,\A1\B1 is that synapses
individually adjust the probability that they re&amp;shy;lease neurotransmitter in the
manner of the Law of Effect: if reward follows release, the release probability
increases, and decreases if reward follows fail&amp;shy;ure to release. This is
essentially the same as the learning scheme Minsky used in his 1954 Princeton
Ph.D. dissertation (Minsky, 1954), where he called the synapse-like learning
element a SNARC (Stochastic Neural-Analog Re&amp;shy;inforcement Calculator).
Contingent eligibility is involved in these ideas too, although it is
contingent on the activity of an individual synapse instead of the postsynaptic
neuron.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Frey and
Morris (1997) proposed the idea of a \A1\B0synaptic tag\A1\B1 for the induction of
long-lasting strengthening of synaptic efficacy. Though not unlike Klopf\A1\AFs
eligibility, their tag was hypothesized to consist of a temporary strengthening&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;of a synapse
that could be transformed into a long-lasting strengthening by subsequent
neuron activation. The model of O\A1\AFReilly and Frank (2006) and O\A1\AFReilly, Frank,
Hazy, and Watz (2007) uses working memory to bridge temporal intervals instead
of eligibility traces. Wickens and Kotter (1995) discuss possible mechanisms
for synaptic eligibility. He, Huertas, Hong, Tie, Hell, Shouval, Kirkwood
(2015) provide evidence supporting the existence of contingent eligibility
traces in synapses of cortical neurons with time courses like those of the
eligibility traces Klopf postulated.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.0pt;
margin-left:36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;The metaphor of a neuron using a
learning rule related to bacterial chemo- taxis was discussed by Barto (1989).
Koshland\A1\AFs extensive study of bacterial chemotaxis was in part motivated by
similarities between features of bacteria and features of neurons (Koshland,
1980). See also Berg (1975). Shiman- sky (2009) proposed a synaptic learning
rule somewhat similar to Seung\A1\AFs mentioned above in which each synapse
individually acts like a chemotactic bacterium. In this case a collection of
synapses \A1\B0swims\A1\B1 toward attractants in the high-dimensional space of synaptic
weight values. Montague, Dayan, Person, and Sejnowski (1995) proposed a chemotactic-like
model of the bee\A1\AFs foraging behavior involving the neuromodulator octopamine.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;text-indent:-35.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;mso-list:l63 level1 lfo89;tab-stops:36.3pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;color:
black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;15.10&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Research on the
behavior of reinforcement learning agents in team and game problems has a long
history roughly occurring in three phases. To the best or our knowledge, the
first phase began with investigations by the Russian math&amp;shy;ematician and
physicist M. L. Tsetlin. A collection of his work was published as Tsetlin
(1973) after his death in 1966. Our Sections 1.7 and 4.8 refer to his study of
learning automata in connection to bandit problems. The Tsetlin collection also
includes studies of learning automata in team and game prob&amp;shy;lems, which led to
later work in this area using stochastic learning automata as described by
Narendra and Thathachar (1974), Viswanathan and Narendra (1974), Lakshmivarahan
and Narendra (1982), Narendra and Wheeler (1983), Narendra (1989), and
Thathachar and Sastry (2002). Thathachar and Sastry&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;mso-list:l84 level1 lfo90;tab-stops:70.55pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;color:
black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;(2011)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;is a more
recent comprehensive account. These studies were mostly restricted to
non-associative learning automata, meaning that they did not address
associative, or contextual, bandit problems (Section 2.9).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;The second
phase began with the extension of learning automata to the associative, or
contextual, case. Barto, Sutton, and Brouwer (1981) and Barto and Sutton (1981)
experimented with associative stochastic learning automata in single-layer
artificial neural networks to which a global reinforce&amp;shy;ment signal was
broadcast. They called neuron-like elements implementing this kind of learning &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;associative
search elements&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt; (ASEs). Barto
and Anan- dan (1985) introduced a more sophisticated associative reinforcement
learn&amp;shy;ing algorithm called the &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;associative
reward-penalty&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt; (A&lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;r&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;sub&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;-&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;) algorithm. They
proved a convergence result by combining theory of stochastic learning au&amp;shy;tomata
with theory of pattern classification. Barto (1985, 1986) and Barto and Jordan
(1987) described results with teams of A&lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;r&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:
normal&#39;&gt;_&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook4&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;p &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;units connected into multi-layer neural networks, showing that they
could learn nonlinear&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:22.0pt;margin-bottom:3.0pt;
margin-left:36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;functions, such as XOR and
others, with a globally-broadcast reinforcement signal. Barto (1985)
extensively discussed this approach to artificial neural networks and how this
type of learning rule is related to others in the litera&amp;shy;ture at that time.
Williams (1992) mathematically analyzed and broadened this class of learning
rules and related their use to the error backpropagation method for training
multilayer artificial neural networks. Williams (1988) de&amp;shy;scribed several ways
that backpropagation and reinforcement learning can be combined for training
artificial neural networks. Williams (1992) showed that a special case of the &lt;/span&gt;&lt;/span&gt;&lt;span
class=51b&gt;&lt;span lang=EN-US&gt;Ar&lt;sub&gt;-&lt;/sub&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt; algorithm is a REINFORCE algorithm, although better results were
obtained with the general &lt;/span&gt;&lt;/span&gt;&lt;span class=51b&gt;&lt;span lang=EN-US&gt;Ar&lt;sub&gt;-&lt;/sub&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; algorithm (Barto,1985).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:22.0pt;margin-bottom:12.0pt;
margin-left:36.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;The third phase of interest in
teams of reinforcement learning agents was influenced by increased
understanding of the role of dopamine as a widely broadcast neuromodulator and
speculation about the existence of reward- modulated STDP. Much more so than
earlier research, this research considers details of synaptic plasticity and
other constraints from neuroscience. Pub&amp;shy;lications include the following
(chronologically and alphabetically): Bartlett and Baxter (1999, 2000), Xie and
Seung (2004), Baras and Meir (2007), Far- ries and Fairhall (2007), Florian
(2007), Izhikevich (2007), Pecevski, Maass, and Legenstein (2007), Legenstein,
Pecevski, and Maass (2008), Kolodziejski, Porr, and Worgotter (2009), Urbanczik
and Senn (2009), and Vasilaki, Fremaux, Urbanczik, Senn, and Gerstner (2009).
Nowe, Vrancx, and De Hauwere (&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;2012&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;) reviewed more recent developments in the wider field of
multi-agent reinforcement learning&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:22.0pt;margin-bottom:0cm;
margin-left:36.0pt;margin-bottom:.0001pt;text-indent:-35.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;mso-list:l63 level1 lfo89;tab-stops:36.3pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;color:
black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;15.11&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Yin and
Knowlton (2006) reviewed findings from outcome-devaluation ex&amp;shy;periments with
rodents supporting the view that habitual and goal-directed behavior (as
psychologists use the phrase) are respectively most associated with processing
in the dorsolateral striatum (DLS) and the dorsomedial stria&amp;shy;tum (DMS). Results
of functional imaging experiments with human subjects in the outcome-devaluation
setting by Valentin, Dickinson, and O\A1\AFDoherty (2007) suggest that the
orbitofrontal cortex (OFC) is an important compo&amp;shy;nent of goal-directed choice.
Single unit recordings in monkeys by Padoa- Schioppa and Assad (2006) support
the role of the OFC in encoding values guiding choice behavior. Rangel,
Camerer, and Montague (2008) and Rangel and Hare (2010) reviewed findings from
the perspective of neuroeconomics about how the brain makes goal-directed
decisions. Pezzulo, van der Meer, Lansink, and Pennartz (2014) reviewed the
neuroscience of internally gen&amp;shy;erated sequences and presented a model of how
these mechanisms might be components of model-based planning. Daw and Shohamy
(2008) proposed that while dopamine signaling connects well to habitual, or
model-free, be&amp;shy;havior, other processes are involved in goal-directed, or
model-based, behav&amp;shy;ior. Data from experiments by Bromberg-Martin, Matsumoto,
Hong, and Hikosaka (&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;2010&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;) indicate that dopamine signals contain information perti&amp;shy;nent to
both habitual and goal-directed behavior. Doll, Simon, and Daw&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-left:36.0pt;text-indent:0cm;line-height:13.45pt;
mso-line-height-rule:exactly;mso-list:l84 level1 lfo90;tab-stops:70.55pt;
background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US style=&#39;color:
black&#39;&gt;&lt;span style=&#39;mso-list:Ignore&#39;&gt;(2012)&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;argued that
there may not a clear separation in the brain between&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-bottom:13.5pt;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;mechanisms
that subserve habitual and goal-directed learning and choice.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Keiflin and Janak &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;(2015) &lt;/span&gt;&lt;span
lang=EN-US&gt;reviewed connections between TD errors and addic&amp;shy;tion. Nutt,
Lingford-Hughes, Erritzoe, and Stokes (2015) critically evaluated the
hypothesis that addiction is due to a disorder of the dopamine system.
Montague, Dolan, Friston, and Dayan (2012) outlined the goals and early ef&amp;shy;forts
in the field of computational psychiatry, and Adams, Huys, and Roiser (2015) reviewed
more recent progress.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:#141414;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection382&gt;

&lt;p class=8a style=&#39;margin-bottom:29.1pt;line-height:19.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=84&gt;&lt;span lang=EN-US&gt;Chapter 16&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=833 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:37.55pt;
margin-left:0cm;line-height:22.0pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark259&gt;&lt;span class=832&gt;&lt;span lang=EN-US&gt;Applications and Case Studies&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:24.35pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;In this final chapter we present
a few case studies of reinforcement learning. Several of these are substantial
applications of potential economic significance. One, Samuel\A1\AFs checkers player,
is primarily of historical interest. Our presentations are intended to
illustrate some of the trade-offs and issues that arise in real applications.
For example, we emphasize how domain knowledge is incorporated into the
formulation and solution of the problem. We also highlight the representation
issues that are so often critical to successful applications. The algorithms
used in some of these case studies are substantially more complex than those we
have presented in the rest of the book. Applications of reinforcement learning
are still far from routine and typically require as much art as science. Making
applications easier and more straightforward is one of the goals of current
research in reinforcement learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l64 level1 lfo91;tab-stops:44.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark260&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;16.1&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=141&gt;&lt;span lang=EN-US&gt;TD-Gammon&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;One of the
most impressive applications of reinforcement learning to date is that by
Gerald Tesauro to the game of backgammon (Tesauro, 1992, 1994, 1995, 2002).
Tesauro\A1\AFs program, &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;TD-Gammon,&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; required little backgammon knowledge, yet learned
to play extremely well, near the level of the world\A1\AFs strongest grandmasters.
The learning algorithm in TD-Gammon was a straightforward combination of the
TD(A) algorithm and nonlinear function approximation using a multilayer neural
network trained by backpropagating TD errors.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Backgammon is a major game in the sense that it is played throughout
the world, with numerous tournaments and regular world championship matches. It
is in part a game of chance, and it is a popular vehicle for waging significant
sums of money. There are probably more professional backgammon players than
there are profes&amp;shy;sional chess players. The game is played with 15 white and 15
black pieces on a board of 24 locations, called &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;points&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;. Figure 16.1 shows a typical position early in the
game, seen from the perspective of the white player.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;In this figure, white has just rolled the dice and obtained a 5 and
a 2. This means that he can move one of his pieces 5 steps and one (possibly
the same piece) 2 steps.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:175.9pt;mso-element-wrap:
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column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=235 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=235 style=&#39;padding-top:0cm;padding-right:
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&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:24.15pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;For example,
he could move two pieces from the &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;12 &lt;/span&gt;&lt;span lang=EN-US&gt;point,
one to the &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;17 &lt;/span&gt;&lt;span lang=EN-US&gt;point, and one to the 14 point. White\A1\AFs
objective is to advance all of his pieces into the last quadrant (points 19-24)
and then off the board. The first player to remove all his pieces wins. One
complication is that the pieces interact as they pass each other going in
different directions. For example, if it were black\A1\AFs move in Figure 16.1, he
could use the dice roll of 2 to move a piece from the 24 point to the 22 point,
\A1\B0hitting\A1\B1 the white piece there. Pieces that have been hit are placed on the \A1\B0bar\A1\B1
in the middle of the board (where we already see one previously hit black
piece), from whence they reenter the race from the start. However, if there are
two pieces on a point, then the opponent cannot move to that point; the pieces
are protected from being hit. Thus, white cannot use his 5-2 dice roll to move
either of his pieces on the &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt; point, because their possible resulting points are occupied by
groups of black pieces. Forming contiguous blocks of occupied points to block
the opponent is one of the elementary strategies of the game.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Backgammon
involves several further complications, but the above description gives the
basic idea. With 30 pieces and 24 possible locations (26, counting the bar and
off-the-board) it should be clear that the number of possible backgammon
positions is enormous, far more than the number of memory elements one could
have in any physically realizable computer. The number of moves possible from
each position is also large. For a typical dice roll there might be 20
different ways of playing. In considering future moves, such as the response of
the opponent, one must consider the possible dice rolls as well. The result is
that the game tree has an effective branching factor of about 400. This is far
too large to permit effective use of the conventional heuristic search methods
that have proved so effective in games like chess and checkers.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;On the other
hand, the game is a good match to the capabilities of TD learning methods.
Although the game is highly stochastic, a complete description of the game\A1\AFs
state is available at all times. The game evolves over a sequence of moves and
positions until finally ending in a win for one player or the other, ending the
game. The outcome can be interpreted as a final reward to be predicted. On the&lt;br
clear=all style=&#39;page-break-before:always&#39;&gt;
other hand, the theoretical results we have described so far cannot be usefully
applied to this task. The number of states is so large that a lookup table
cannot be used, and the opponent is a source of uncertainty and time variation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;TD-Gammon used a nonlinear form of TD(A). The estimated value,
v(s,w), of any state (board position) &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;s&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; was meant to estimate the probability of winning
starting from state s. To achieve this, rewards were defined as zero for all
time steps except those on which the game is won. To implement the value
function, TD-Gammon used a standard multilayer neural network, much as shown in
Figure 16.2. (The real network had two additional units in its final layer to
estimate the probability of each player\A1\AFs winning in a special way called a
\A1\B0gammon\A1\B1 or \A1\B0backgammon.\A1\B1) The network consisted of a layer of input units, a
layer of hidden units, and a final output unit. The input to the network was a
representation of a backgammon position, and the output was an estimate of the
value of that position.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/v:shape&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;In the first version of TD-Gammon,
TD-Gammon 0.0, backgammon positions were represented to the network in a
relatively direct way that involved little backgammon knowledge. It did,
however, involve substantial knowledge of how neural networks work and how information
is best presented to them. It is instructive to note the exact representation
Tesauro chose. There were a total of 198 input units to the network. For each
point on the backgammon board, four units indicated the number of white pieces
on the point. If there were no white pieces, then all four units took on the
value zero. If there was one piece, then the first unit took on the value 1.
This encoded the elementary concept of a \A1\B0blot,\A1\B1 i.e., a piece that can be hit
by the opponent. If there were two or more pieces, then the second unit was set
to 1. This encoded the basic concept of a \A1\B0made point\A1\B1 on which the opponent
cannot land. If there were exactly three pieces on the point, then the third
unit was set to 1. This encoded the basic concept of a \A1\B0single spare,\A1\B1 i.e., an
extra piece in addition to the two pieces that made the point. Finally, if
there were more than three pieces, the fourth unit was set to a value
proportionate to the number of additional pieces beyond three. Letting &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; denote the total number of pieces on the point, if &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; &amp;gt; 3, then the fourth unit took on the value (n &lt;/span&gt;&lt;/span&gt;&lt;span
class=511pt&gt;&lt;span lang=EN-US&gt;\A1\AA3)/2.&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt; This encoded a linear representation&lt;br clear=all style=&#39;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/span&gt;&lt;span class=ac&gt;&lt;span lang=EN-US&gt;of \A1\B0multiple spares\A1\B1 at the given
point.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
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transparent&#39;&gt;&lt;span lang=EN-US&gt;With four units for white and four for black at
each of the 24 points, that made a total of 192 units. Two additional units
encoded the number of white and black pieces on the bar (each took the value n/&lt;/span&gt;&lt;span
class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;, where &lt;span class=affffd&gt;n&lt;/span&gt; is the number of pieces on the
bar), and two more encoded the number of black and white pieces already
successfully removed from the board (these took the value n/15, where n is the
number of pieces already borne off). Finally, two units indicated in a binary
fashion whether it was white\A1\AFs or black\A1\AFs turn to move. The general logic
behind these choices should be clear. Basically, Tesauro tried to represent the
position in a straightforward way, while keeping the number of units relatively
small. He provided one unit for each conceptually distinct possibility that
seemed likely to be relevant, and he scaled them to roughly the same range, in
this case between &lt;/span&gt;&lt;span class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; and &lt;/span&gt;&lt;span class=9pte&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.3pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;Given a representation of a backgammon position, the network
computed its esti&amp;shy;mated value in the standard way. Corresponding to each
connection from an input unit to a hidden unit was a real-valued weight.
Signals from each input unit were multiplied by their corresponding weights and
summed at the hidden unit. The output, h(j), of hidden unit &lt;span class=affffd&gt;j&lt;/span&gt;
was a nonlinear sigmoid function of the weighted sum:&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:32.9pt;mso-element-frame-hspace:
28.1pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
mso-element-anchor-horizontal:column;mso-element-left:28.15pt;mso-element-top:
.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=44&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=44 style=&#39;padding-top:0cm;padding-right:
  28.1pt;padding-bottom:0cm;padding-left:28.1pt&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:32.9pt;mso-element-frame-hspace:28.1pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:28.15pt;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_66&#34; o:spid=&#34;_x0000_i1053&#34;
   type=&#34;#_x0000_t75&#34; alt=&#34;image170&#34; style=&#39;width:188.25pt;height:33pt;
   visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image177.png&#34;
    o:title=&#34;image170&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:9.15pt;margin-right:1.0pt;margin-bottom:
0cm;margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;where &lt;span class=affffd&gt;x&lt;/span&gt; is
the value of the ith input unit and Wj- is the weight of its connection to the
jth hidden unit (all the weights in the network together make up the parameter
vector w). The output of the sigmoid is always between 0 and 1, and has a
natural interpretation as a probability based on a summation of evidence. The
computation from hidden units to the output unit was entirely analogous. Each
connection from a hidden unit to the output unit had a separate weight. The
output unit formed the weighted sum and then passed it through the same sigmoid
nonlinearity.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.55pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;TD-Gammon used the semi-gradient form of the TD(A) algorithm
described in Section 12.2, with the gradients computed by the error
backpropagation algorithm (Rumelhart, Hinton, and Williams, 1986). Recall that
the general update rule for this case is&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:13.35pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:right 398.8pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;wt&lt;/span&gt;&lt;span class=MingLiUfff4&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;ʮ&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; == wt + a Rt&lt;/span&gt;&lt;span class=9pte&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + Y^(St+&lt;/span&gt;&lt;span
class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;,wt) \A1\AA v(St,wt) &lt;span class=affffd&gt;e&lt;sub&gt;u&lt;/sub&gt;&lt;/span&gt;&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(16.1)&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;where wt is the vector of all modifiable parameters (in this case,
the weights of the network) and et is a vector of eligibility traces, one for
each component of wt, updated by&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:6.75pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:12.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
lang=EN-US&gt;et == 7Aet&lt;/span&gt;&lt;span class=12pt6&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;i + W(St,wt),&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;with eo == 0. The gradient in this equation can
be computed efficiently by the backpropagation procedure. For the backgammon
application, in which &lt;/span&gt;&lt;span class=9pte&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; = 1 and the reward is
always zero except upon winning, the TD error portion of the learning rule is
usually just v(St+i,w) \A1\AA {)(St,w), as suggested in Figure 16.2.&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;To apply the learning rule we need a source of backgammon games.
Tesauro obtained an unending sequence of games by playing his learning
backgammon player against itself. To choose its moves, TD-Gammon considered
each of the 20 or so ways it could play its dice roll and the corresponding
positions that would result. The resulting positions are &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;afterstates&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; as discussed in Section &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;. The network was consulted to estimate each of their values. The
move was then selected that would lead to the position with the highest
estimated value. Continuing in this way, with TD-Gammon making the moves for
both sides, it was possible to easily generate large numbers of backgammon
games. Each game was treated as an episode, with&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;line-height:13.45pt;mso-line-height-rule:exactly;
tab-stops:lined 293.75pt;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;the sequence of positions acting as the states, So, Si, S&lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;
Tesauro applied the&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;nonlinear TD rule
(16.1) fully incrementally, that is, after each individual move.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The weights of the network were set initially to small random
values. The initial evaluations were thus entirely arbitrary. Since the moves
were selected on the basis of these evaluations, the initial moves were inevitably
poor, and the initial games often lasted hundreds or thousands of moves before
one side or the other won, almost by accident. After a few dozen games however,
performance improved rapidly.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;After playing about 300,000 games against itself, TD-Gammon 0.0 as
described above learned to play approximately as well as the best previous
backgammon com&amp;shy;puter programs. This was a striking result because all the
previous high-performance computer programs had used extensive backgammon
knowledge. For example, the reigning champion program at the time was,
arguably, &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:
8.5pt;font-weight:normal&#39;&gt;Neurogammon,&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt; another pro&amp;shy;gram written by Tesauro that used a neural network but
not TD learning. Neu&amp;shy;rogammon\A1\AFs network was trained on a large training corpus
of exemplary moves provided by backgammon experts, and, in addition, started
with a set of features specially crafted for backgammon. Neurogammon was a
highly tuned, highly effec&amp;shy;tive backgammon program that decisively won the
World Backgammon Olympiad in 1989. TD-Gammon 0.0, on the other hand, was
constructed with essentially zero backgammon knowledge. That it was able to do
as well as Neurogammon and all other approaches is striking testimony to the
potential of self-play learning methods.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The tournament success of TD-Gammon 0.0 with zero expert backgammon
knowl&amp;shy;edge suggested an obvious modification: add the specialized backgammon
features but keep the self-play TD learning method. This produced TD-Gammon
1.0. TD- Gammon 1.0 was clearly substantially better than all previous
backgammon pro&amp;shy;grams and found serious competition only among human experts.
Later versions of the program, TD-Gammon 2.0 (40 hidden units) and TD-Gammon
2.1 (80 hidden units), were augmented with a selective two-ply search
procedure. To select moves, these programs looked ahead not just to the
positions that would immediately result, but also to the opponent\A1\AFs possible
dice rolls and moves. Assuming the opponent always took the move that appeared
immediately best for him, the expected value of each candidate move was computed
and the best was selected. To save computer time, the second ply of search was
conducted only for candidate moves that were ranked highly after the first ply,
about four or five moves on average. Two-ply search affected only the moves
selected; the learning process proceeded exactly as before. The final versions
of the program, TD-Gammon 3.0 and 3.1, used 160 hidden units&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div align=center&gt;

&lt;table class=MsoNormalTable border=0 cellspacing=0 cellpadding=0
 style=&#39;border-collapse:collapse;mso-table-layout-alt:fixed;mso-table-overlap:
 never;mso-padding-alt:0cm .5pt 0cm .5pt&#39;&gt;
 &lt;tr style=&#39;mso-yfti-irow:0;mso-yfti-firstrow:yes;height:28.8pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;td width=97 valign=top style=&#39;width:72.7pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:28.8pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:13.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span
  lang=EN-US&gt;Program&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=69 valign=top style=&#39;width:51.85pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:28.8pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;margin-bottom:3.0pt;text-align:center;
  text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;Hidden&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=afffff6 align=center style=&#39;margin-top:3.0pt;text-align:center;
  text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;Units&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=77 valign=top style=&#39;width:58.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:28.8pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:3.0pt;
  margin-left:10.0pt;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
  exactly;background:transparent;mso-element:frame;mso-element-frame-width:
  402.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span
  lang=EN-US&gt;Training&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=afffff6 style=&#39;margin-top:3.0pt;margin-right:0cm;margin-bottom:0cm;
  margin-left:10.0pt;margin-bottom:.0001pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span
  lang=EN-US&gt;Games&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=155 valign=top style=&#39;width:116.4pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:28.8pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;Opponents&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=137 valign=top style=&#39;width:102.95pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:28.8pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;Results&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:1;height:14.9pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=97 valign=top style=&#39;width:72.7pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:14.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:7.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span
  lang=EN-US&gt;TD-Gam 0.0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=69 valign=top style=&#39;width:51.85pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:14.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;40&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=77 valign=top style=&#39;width:58.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:14.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:10.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span
  lang=EN-US&gt;300,000&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=155 valign=top style=&#39;width:116.4pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:14.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;other programs&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=137 valign=top style=&#39;width:102.95pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:14.9pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;tied for best&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:2;height:13.9pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=97 valign=top style=&#39;width:72.7pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:7.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span
  lang=EN-US&gt;TD-Gam 1.0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=69 valign=top style=&#39;width:51.85pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;80&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=77 valign=top style=&#39;width:58.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:10.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span
  lang=EN-US&gt;300,000&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=155 valign=top style=&#39;width:116.4pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;Robertie, Magriel, ...&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=137 valign=top style=&#39;width:102.95pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;\A1\AA13 pts / 51 games&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:3;height:13.9pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=97 valign=top style=&#39;width:72.7pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:7.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span
  lang=EN-US&gt;TD-Gam 2.0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=69 valign=top style=&#39;width:51.85pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;40&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=77 valign=top style=&#39;width:58.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:10.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span
  lang=EN-US&gt;800,000&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=155 valign=top style=&#39;width:116.4pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;various Grandmasters&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=137 valign=top style=&#39;width:102.95pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;\A1\AA7 pts / 38 games&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:4;height:13.9pt;mso-height-rule:exactly&#39;&gt;
  &lt;td width=97 valign=top style=&#39;width:72.7pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:7.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span
  lang=EN-US&gt;TD-Gam 2.1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=69 valign=top style=&#39;width:51.85pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;80&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=77 valign=top style=&#39;width:58.1pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:10.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span
  lang=EN-US&gt;1,500,000&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=155 valign=top style=&#39;width:116.4pt;border-top:solid windowtext 1.0pt;
  border-left:solid windowtext 1.0pt;border-bottom:none;border-right:none;
  mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:solid windowtext .5pt;
  background:white;padding:0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;Robertie&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=137 valign=top style=&#39;width:102.95pt;border:solid windowtext 1.0pt;
  border-bottom:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-right-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:13.9pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;\A1\AA1 pt / 40 games&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:5;mso-yfti-lastrow:yes;height:14.4pt;mso-height-rule:
  exactly&#39;&gt;
  &lt;td width=97 valign=top style=&#39;width:72.7pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:14.4pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:7.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span
  lang=EN-US&gt;TD-Gam 3.0&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=69 valign=top style=&#39;width:51.85pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:14.4pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;80&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=77 valign=top style=&#39;width:58.1pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:14.4pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 style=&#39;margin-left:10.0pt;text-indent:0cm;line-height:9.5pt;
  mso-line-height-rule:exactly;background:transparent;mso-element:frame;
  mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span class=ArialUnicodeMSff8&gt;&lt;span
  lang=EN-US&gt;1,500,000&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=155 valign=top style=&#39;width:116.4pt;border:solid windowtext 1.0pt;
  border-right:none;mso-border-top-alt:solid windowtext .5pt;mso-border-left-alt:
  solid windowtext .5pt;mso-border-bottom-alt:solid windowtext .5pt;background:
  white;padding:0cm .5pt 0cm .5pt;height:14.4pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt;Kazaros&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=137 valign=top style=&#39;width:102.95pt;border:solid windowtext 1.0pt;
  mso-border-alt:solid windowtext .5pt;background:white;padding:0cm .5pt 0cm .5pt;
  height:14.4pt;mso-height-rule:exactly&#39;&gt;
  &lt;p class=afffff6 align=center style=&#39;text-align:center;text-indent:0cm;
  line-height:9.5pt;mso-line-height-rule:exactly;background:transparent;
  mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  class=CenturySchoolbookfd&gt;&lt;span lang=EN-US&gt;+6&lt;/span&gt;&lt;/span&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt; pts / &lt;/span&gt;&lt;/span&gt;&lt;span
  class=CenturySchoolbookfd&gt;&lt;span lang=EN-US&gt;20&lt;/span&gt;&lt;/span&gt;&lt;span
  class=ArialUnicodeMSff8&gt;&lt;span lang=EN-US&gt; games&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=536 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left style=&#39;padding-top:0cm;padding-right:0cm;
  padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=6f style=&#39;line-height:9.5pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:402.0pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:center;mso-element-top:.05pt;mso-height-rule:exactly&#39;&gt;&lt;span
  lang=EN-US&gt;Table 16.1: Summary of TD-Gammon Results&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:20.95pt;margin-right:3.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;and a selective
three-ply search. TD-Gammon illustrates the combination of learned value
functions and decision-time search as in heuristic search and MCTS methods. In
follow-on work, Tesauro and Galperin (1997) explored trajectory sampling meth&amp;shy;ods
as an alternative to full-width search, which reduced the error rate of live
play by large numerical factors (4x-6x) while keeping the think time reasonable
at &lt;/span&gt;&lt;/span&gt;&lt;span class=51MingLiU1&gt;&lt;span style=&#39;font-size:5.0pt;
mso-ansi-language:ZH-TW;font-weight:normal&#39;&gt;&amp;#12316;&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;5-10 seconds per move.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:3.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;During the 1990s, Tesauro was able to play his programs in a
significant number of games against world-class human players. A summary of the
results is given in Table 16.1. Based on these results and analyses by
backgammon grandmasters (Robertie, 1992; see Tesauro, 1995), TD-Gammon 3.0
appeared to play at close to, or possibly better than, the playing strength of
the best human players in the world. Tesauro reported in a subsequent article
(Tesauro, 2002) the results of an extensive rollout analysis of the move
decisions and doubling decisions of TD-Gammon relative to top human players. The
conclusion was that TD-Gammon 3.1 had a \A1\B0lopsided advantage\A1\B1 in piece-movement
decisions, and a \A1\B0slight edge\A1\B1 in doubling decisions, over top humans.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:3.0pt;margin-bottom:27.35pt;
margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;TD-Gammon had
a significant impact on the way the best human players play the game. For
example, it learned to play certain opening positions differently than was the
convention among the best human players. Based on TD-Gammon\A1\AFs success and
further analysis, the best human players now play these positions as TD-Gammon
does (Tesauro, 1995). The impact on human play was greatly accelerated when sev&amp;shy;eral
other self-teaching neural net backgammon programs inspired by TD-Gammon, such
as Jellyfish, Snowie, and GNUBackgammon, became widely available. These
programs enabled wide dissemination of new knowledge generated by the neural
nets, resulting in great improvements in the overall caliber of human
tournament play (Tesauro, 2002).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.8pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l64 level1 lfo91;tab-stops:45.65pt;background:transparent&#39;&gt;&lt;a
name=bookmark261&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;16.2&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=141&gt;&lt;span lang=EN-US&gt;Samuel&lt;sup&gt;,&lt;/sup&gt;s
Checkers Player&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:3.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;An important
precursor to Tesauro\A1\AFs TD-Gammon was the seminal work of Arthur Samuel (1959,
1967) in constructing programs for learning to play checkers. Samuel was one of
the first to make effective use of heuristic search methods and of what we
would now call temporal-difference learning. His checkers players are
instructive &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:#141414;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection383&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:3.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;case studies
in addition to being of historical interest. We emphasize the relationship of
Samuel\A1\AFs methods to modern reinforcement learning methods and try to convey
some of Samuel\A1\AFs motivation for using them.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Samuel first wrote a checkers-playing program for the IBM 701 in
1952. His first &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;learning&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; program was completed in 1955 and was demonstrated
on television in 1956. Later versions of the program achieved good, though not
expert, playing skill. Samuel was attracted to game-playing as a domain for
studying machine learning because games are less complicated than problems
\A1\B0taken from life\A1\B1 while still allowing fruitful study of how heuristic
procedures and learning can be used together. He chose to study checkers
instead of chess because its relative simplicity made it possible to focus more
strongly on learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Samuel\A1\AFs programs played by performing a lookahead search from each
current position. They used what we now call heuristic search methods to
determine how to expand the search tree and when to stop searching. The
terminal board positions of each search were evaluated, or \A1\B0scored,\A1\B1 by a value
function, or \A1\B0scoring polynomial,\A1\B1 using linear function approximation. In this
and other respects Samuel\A1\AFs work seems to have been inspired by the suggestions
of Shannon (1950). In particular, Samuel\A1\AFs program was based on Shannon\A1\AFs
minimax procedure to find the best move from the current position. Working
backward through the search tree from the scored terminal positions, each
position was given the score of the position that would result from the best
move, assuming that the machine would always try to maximize the score, while
the opponent would always try to minimize it. Samuel called this the &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;backed-up
score &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;of the position. When the
minimax procedure reached the search tree\A1\AFs root\A1\AAthe current position\A1\AAit
yielded the best move under the assumption that the opponent would be using the
same evaluation criterion, shifted to its point of view. Some versions of
Samuel\A1\AFs programs used sophisticated search control methods analogous to what
are known as \A1\B0alpha-beta\A1\B1 cutoffs (e.g., see Pearl, 1984).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Samuel used two main learning methods, the simplest of which he
called &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:
8.5pt;font-weight:normal&#39;&gt;rote learn&amp;shy;ing&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;. It consisted simply of saving a description of each board position
encountered during play together with its backed-up value determined by the
minimax procedure. The result was that if a position that had already been
encountered were to occur again as a terminal position of a search tree, the
depth of the search was effectively amplified since this position\A1\AFs stored
value cached the results of one or more searches conducted earlier. One initial
problem was that the program was not encouraged to move along the most direct
path to a win. Samuel gave it a \A1\B0a sense of direc&amp;shy;tion\A1\B1 by decreasing a
position\A1\AFs value a small amount each time it was backed up a level (called a
ply) during the minimax analysis. \A1\B0If the program is now faced with a choice of
board positions whose scores differ only by the ply number, it will
automatically make the most advantageous choice, choosing a low-ply alternative
if winning and a high-ply alternative if losing\A1\B1 (Samuel, 1959, p. 80). Samuel
found this discounting-like technique essential to successful learning. Rote
learning produced slow but continuous improvement that was most effective for
opening and endgame play. His program became a \A1\B0better-than-average novice\A1\B1
after learning from many games against itself, a variety of human opponents,
and from book games in a su-&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:165.35pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=220 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=220 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:165.35pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape
   id=&#34;Picture_x0020_67&#34; o:spid=&#34;_x0000_i1052&#34; type=&#34;#_x0000_t75&#34; alt=&#34;image171&#34;
   style=&#39;width:252.75pt;height:165.75pt;visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image178.jpg&#34;
    o:title=&#34;image171&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=263 align=left style=&#39;text-align:left;line-height:9.5pt;mso-line-height-rule:
  exactly;background:transparent;mso-element:frame;mso-element-frame-height:
  165.35pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span class=261&gt;&lt;span lang=EN-US&gt;Figure 16.3: The backup diagram for
  Samuel\A1\AFs checkers player.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d align=left style=&#39;margin-top:21.1pt;margin-right:0cm;margin-bottom:
1.25pt;margin-left:0cm;text-align:left;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;pervised
learning mode.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Rote learning and other aspects of Samuel\A1\AFs work strongly suggest
the essential idea of temporal-difference learning&lt;/span&gt;&lt;/span&gt;&lt;span
class=51MingLiU&gt;&lt;span style=&#39;font-size:6.0pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;that the
value of a state should equal the value of likely following states. Samuel came
closest to this idea in his second learning method, his \A1\B0learning by
generalization\A1\B1 procedure for modifying the parameters of the value function.
Samuel\A1\AFs method was the same in concept as that used much later by Tesauro in
TD-Gammon. He played his program many games against another version of itself
and performed a backup operation after each move. The idea of Samuel\A1\AFs backup
is suggested by the diagram in Figure 16.3. Each open circle represents a
position where the program moves next, an &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;on-move&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; position, and each solid circle represents a
position where the opponent moves next. A backup was made to the value of each
on-move position after a move by each side, resulting in a second on- move
position. The backup was toward the minimax value of a search launched from the
second on-move position. Thus, the overall effect was that of a backup
consisting of one full move of real events and then a search over possible
events, as suggested by Figure 16.3. Samuel\A1\AFs actual algorithm was
significantly more complex than this for computational reasons, but this was
the basic idea.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Samuel did not include explicit rewards. Instead, he fixed the
weight of the most important feature, the &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;piece advantage&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; feature, which measured the number of pieces the
program had relative to how many its opponent had, giving higher weight to
kings, and including refinements so that it was better to trade pieces when
winning than when losing. Thus, the goal of Samuel\A1\AFs program was to improve its
piece advantage, which in checkers is highly correlated with winning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;However, Samuel\A1\AFs learning method may have been missing an essential
part of a sound temporal-difference algorithm. Temporal-difference learning can
be viewed as a way of making a value function consistent with itself, and this
we can clearly see in Samuel\A1\AFs method. But also needed is a way of tying the
value function to the true value of the states. We have enforced this via
rewards and by discounting or giving a fixed value to the terminal state. But
Samuel\A1\AFs method included no rewards and no special treatment of the terminal
positions of games. As Samuel himself pointed out, his value function could
have become consistent merely by giving a constant value to all positions. He
hoped to discourage such solutions by giving his piece-advantage term a large,
nonmodifiable weight. But although this may decrease the likelihood of finding
useless evaluation functions, it does not prohibit them. For example, a
constant function could still be attained by setting the modifiable weights so
as to cancel the effect of the nonmodifiable one.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Since Samuel\A1\AFs
learning procedure was not constrained to find useful evaluation functions, it
should have been possible for it to become worse with experience. In fact,
Samuel reported observing this during extensive self-play training sessions. To
get the program improving again, Samuel had to intervene and set the weight
with the largest absolute value back to zero. His interpretation was that this
drastic intervention jarred the program out of local optima, but another
possibility is that it jarred the program out of evaluation functions that were
consistent but had little to do with winning or losing the game.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-bottom:30.35pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Despite these potential problems, Samuel\A1\AFs checkers player using the
generaliza&amp;shy;tion learning method approached \A1\B0better-than-average\A1\B1 play. Fairly
good amateur opponents characterized it as \A1\B0tricky but beatable\A1\B1 (Samuel,
1959). In contrast to the rote-learning version, this version was able to
develop a good middle game but remained weak in opening and endgame play. This
program also included an ability to search through sets of features to find those
that were most useful in forming the value function. A later version (Samuel,
1967) included refinements in its search procedure, such as alpha-beta pruning,
extensive use of a supervised learning mode called \A1\B0book learning,\A1\B1 and
hierarchical lookup tables called signature tables (Grif&amp;shy;fith, 1966) to
represent the value function instead of linear function approximation. This
version learned to play much better than the 1959 program, though still not at
a master level. Samuel\A1\AFs checkers-playing program was widely recognized as a
significant achievement in artificial intelligence and machine learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l64 level1 lfo91;tab-stops:44.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark262&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;16.3&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=141&gt;&lt;span lang=EN-US&gt;The Acrobot&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Reinforcement learning
has been applied to a wide variety of physical control tasks (e.g., for a
collection of robotics applications, see Kober and Peters, 2012). One such task
is the &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:
8.5pt;font-weight:normal&#39;&gt;acrobot&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;, a two-link, underactuated robot roughly analogous to a gymnast
swinging on a high bar (Figure 16.4). The first joint (corresponding to the
gymnast\A1\AFs hands on the bar) cannot exert torque, but the second joint (corresponding
to the gymnast bending at the waist) can. The system has four continuous state
variables: two joint positions and two joint velocities. The equations of
motion are given in Figure 16.5. This system has been widely studied by control
engineers (e.g., Spong, 1994) and machine-learning researchers (e.g., Dejong
and Spong, 1994; Boone, 1997).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;text-indent:11.0pt;line-height:13.2pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;One objective
for controlling the acrobot is to swing the tip (the \A1\B0feet\A1\B1) above the first
joint by an amount equal to one of the links in minimum time. In this task, the
torque applied at the second joint is limited to three choices: positive torque
of a fixed magnitude, negative torque of the same magnitude, or no torque. A
reward of \A1\AA1 is given on all time steps until the goal is reached, which ends
the episode. No discounting is used &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;(7&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; = 1). Thus, the optimal value, &lt;/span&gt;&lt;/span&gt;&lt;span
class=511pt0&gt;&lt;span lang=EN-US&gt;v^(s),&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt; of any state, s, is the minimum time to reach the goal (an integer
number of steps) starting from s.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Sutton (1996) addressed the acrobot swing-up task in an on-line,
modelfree con&amp;shy;text. Although the acrobot was simulated, the simulator was not
available for use by the agent/controller in any way. The training and
interaction were just as if a real, physical acrobot had been used. Each
episode began with both links of the ac&amp;shy;robot hanging straight down and at
rest. Torques were applied by the reinforcement learning agent until the goal
was reached, which always happened eventually. Then the acrobot was restored to
its initial rest position and a new episode was begun.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The learning algorithm used was Sarsa(A) with linear function
approximation, tile coding, and replacing traces as on page 319. With a small,
discrete action set, it is natural to use a separate set of tilings for each
action. The next choice is of the continuous variables with which to represent
the state. A clever designer would probably represent the state in terms of the
angular position and velocity of the center of mass and of the second link,
which might make the solution simpler and consistent with broad generalization.
But since this was just a test problem, a more naive, direct representation was
used in terms of the positions and velocities of the links: &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;i,&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;i,&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;02&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;,
and &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;62&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;.
The two angles are restricted to a limited range by the physics of the acrobot
(see Figure 16.5) and the two angles are naturally restricted to [0, 2n]. Thus,
the state space in this task is a bounded rectangular region in four
dimensions.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:30.95pt;
margin-left:0cm;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;This leaves
the question of what tilings to use. There are many possibilities, as discussed
in Chapter 9. One is to use a complete grid, slicing the four-dimensional space
along all dimensions, and thus into many small four-dimensional tiles. Alterna&amp;shy;tively,
one could slice along only one of the dimensions, making hyperplanar stripes.
In this case one has to pick which dimension to slice along. And of course in
all&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=343 align=center style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
43.3pt;margin-left:0cm;text-align:center;line-height:8.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=342&gt;&lt;span lang=EN-US&gt;Goal: Raise
tip above line&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:91.2pt;mso-element-frame-height:
89.3pt;mso-element-frame-hspace:155.65pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:166.0pt;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=329 height=119&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=119 style=&#39;padding-top:0cm;padding-right:
  155.65pt;padding-bottom:0cm;padding-left:155.65pt&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:91.2pt;
  mso-element-frame-height:89.3pt;mso-element-frame-hspace:155.65pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:166.0pt;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;mso-no-proof:yes&#39;&gt;&lt;v:shape id=&#34;Picture_x0020_68&#34; o:spid=&#34;_x0000_i1051&#34;
   type=&#34;#_x0000_t75&#34; alt=&#34;image172&#34; style=&#39;width:90.75pt;height:89.25pt;
   visibility:visible;mso-wrap-style:square&#39;&gt;
   &lt;v:imagedata src=&#34;Reinforcement%20Learning%20An%20Introduction%20translate%20-%20Copy_files/image179.jpg&#34;
    o:title=&#34;image172&#34;/&gt;
  &lt;/v:shape&gt;&lt;/span&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:10.55pt;mso-element-frame-height:
8.9pt;mso-element-frame-hspace:155.65pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:257.2pt;mso-element-top:66.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=221 height=12&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=12 style=&#39;padding-top:0cm;padding-right:
  155.65pt;padding-bottom:0cm;padding-left:155.65pt&#39;&gt;
  &lt;p class=6c style=&#39;line-height:8.5pt;mso-line-height-rule:exactly;background:
  transparent;mso-element:frame;mso-element-frame-width:10.55pt;mso-element-frame-height:
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  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:257.2pt;mso-element-top:66.05pt&#39;&gt;&lt;span class=68&gt;&lt;span
  lang=EN-US&gt;tip&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:116.9pt;mso-element-frame-height:
10.0pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
mso-element-anchor-horizontal:column;mso-element-left:155.7pt;mso-element-top:
112.95pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=156 height=13&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=13 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=263 align=left style=&#39;text-align:left;line-height:9.5pt;mso-line-height-rule:
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  116.9pt;mso-element-frame-height:10.0pt;mso-element-wrap:no-wrap-beside;
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  mso-element-left:155.7pt;mso-element-top:112.95pt&#39;&gt;&lt;span class=261&gt;&lt;span
  lang=EN-US&gt;Figure 16.4: The acrobot.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Courier New&#34;;
mso-fareast-font-family:&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;
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style=&#39;mso-special-character:line-break;page-break-before:always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

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    text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;background:
    transparent&#39;&gt;&lt;span class=MingLiUfff5&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\9Bl&lt;/span&gt;&lt;/span&gt;&lt;span
    class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt;i =&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;p class=afffff6 style=&#39;margin-left:7.0pt;text-align:justify;text-justify:
    inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:
    exactly;background:transparent&#39;&gt;&lt;span class=MingLiUfff5&gt;&lt;span
    style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\9Bl&lt;/span&gt;&lt;/span&gt;&lt;span class=0ptExact8&gt;&lt;span
    lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:-.5pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
    class=Exact&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:0pt&#39;&gt; =&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
    &lt;/div&gt;
    &lt;![if !mso]&gt;&lt;/td&gt;
   &lt;/tr&gt;
  &lt;/table&gt;
  &lt;![endif]&gt;&lt;/v:textbox&gt;
 &lt;w:wrap type=&#34;square&#34; anchorx=&#34;margin&#34; anchory=&#34;margin&#34;/&gt;
&lt;/v:shape&gt;&lt;span class=150pt0&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;d&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt;2&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:34.7pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:11.5pt;mso-line-height-rule:exactly;tab-stops:right 122.7pt;
background:transparent&#39;&gt;&lt;span lang=EN-US&gt;m&lt;/span&gt;&lt;span class=9pte&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;21^2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; + &lt;span
class=affffd&gt;h&lt;/span&gt; \A1\AA di J&lt;span style=&#39;mso-tab-count:1&#39;&gt; &lt;/span&gt;( T + di&lt;/span&gt;&lt;span
class=MingLiUfff4&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;\9Bl&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;i \A1\AA &lt;sup&gt;m&lt;/sup&gt;&lt;/span&gt;&lt;span class=9pte&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;li&lt;/span&gt;&lt;span
class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;c&lt;/span&gt;&lt;span class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2^?&lt;sup&gt;2&lt;/sup&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; sin &lt;span class=affffd&gt;6&lt;/span&gt; \A1\AA&lt;/span&gt;&lt;span class=MingLiUfff4&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;\9Bl&lt;/span&gt;&lt;/span&gt;&lt;span
class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d align=right style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
15.65pt;margin-left:1.0pt;text-align:right;line-height:16.3pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;m&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;l&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;^i &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=51MingLiU&gt;&lt;span style=&#39;font-size:6.0pt;
mso-ansi-language:ZH-TW;font-weight:normal&#39;&gt;צ&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang8&gt;&lt;span lang=ZH-TW style=&#39;font-size:9.0pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=51MingLiU&gt;&lt;span
style=&#39;font-size:6.0pt;mso-ansi-language:ZH-TW;font-weight:normal&#39;&gt;\CF\FB&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Constantia&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;1^2&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;21&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;c&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;cos &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;) + &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;h&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;h &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;m&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;^2&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;c&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;cos &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;*&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;) + &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;h &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;\A1\AAm&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;l&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;c&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;^?&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;sin &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;m&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang8&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;l&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;c&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;^&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;sin &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2 &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;+ (m&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;l&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span lang=EN-US
style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;c&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;+ m&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;l&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;)g cos(&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;\A1\AA n/&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;) + &lt;/span&gt;&lt;/span&gt;&lt;span
class=51MingLiU&gt;&lt;span style=&#39;font-size:6.0pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;\9Bl&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang8&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt;font-weight:normal&#39;&gt;2 &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;m&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;l&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:12.0pt;font-weight:normal&#39;&gt;c&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang8&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;g cos(&lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang8&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;\A1\AA n/&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:19.65pt;
margin-left:1.0pt;line-height:11.75pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Figure 16.5: The equations of
motions of the simulated acrobot. A time step of 0.05 seconds was used in the
simulation, with actions chosen after every four time steps. The torque applied
at the second joint is denoted by t G {+1, \A1\AA1, 0}. There were no constraints on
the joint positions, but the angular velocities were limited to G [\A1\AA4n, 4n] and
&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;02&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt; G
[\A1\AA9n, 9n]. The constants were mi = m&lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; = 1 (masses of the links), 1i = I&lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; = 1 (lengths of links), 1&lt;sub&gt;c&lt;/sub&gt;i = &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;1&lt;sub&gt;C&lt;/sub&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; = 0.5 (lengths to center of mass of links), Ii = &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;I&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Constantia&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; = 1 (moments of inertia of links), and g = 9.8
(gravity).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;cases one has to pick the width of the slices,
the number of tilings of each kind, and, if there are multiple tilings, how to
offset them. One could also slice along pairs or triplets of dimensions to get
other tilings. For example, if one expected the velocities of the two links to
interact strongly in their effect on value, then one might make many tilings
that sliced along both of these dimensions. If one thought the region around
zero velocity was particularly critical, then the slices could be more closely
spaced there.&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Sutton used tilings that sliced in a variety of
simple ways. Each of the four di&amp;shy;mensions was divided into six equal intervals.
A seventh interval was added to the angular velocities so that tilings could be
offset by a random fraction of an inter&amp;shy;val in all dimensions (see Chapter 9,
subsection \A1\B0Tile Coding\A1\B1&lt;/span&gt;\A3\A9&lt;span lang=EN-US&gt;. Of the total of 48 tilings, &lt;/span&gt;&lt;span
class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; sliced along all four dimensions as discussed above, dividing the
space into&lt;/span&gt;&lt;/p&gt;

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text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l34 level1 lfo92;
tab-stops:10.35pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt;letter-spacing:-.5pt&#39;&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
lang=EN-US&gt;x 7 x &lt;/span&gt;&lt;span class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; x 7 = 1764 tiles each. Another &lt;/span&gt;&lt;span
class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; tilings sliced along three dimensions (3 randomly offset tilings
each for each of the 4 sets of three dimensions), and another &lt;/span&gt;&lt;span
class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; sliced along two dimensions &lt;/span&gt;&lt;span class=9pte&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(2&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; tilings
for each of the &lt;/span&gt;&lt;span class=9pte&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; sets of two dimensions. Finally, a set of 12 tilings depended each
on only one dimension (3 tilings for each of the 4 dimensions). This resulted
in a total of approximately 25, 000 tiles for each action. This number is small
enough that hashing was not necessary. All tilings were offset by a random
fraction of an interval in all relevant dimensions.&lt;/span&gt;&lt;/p&gt;

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    background:transparent&#39;&gt;&lt;span class=130ptExact&gt;&lt;span lang=EN-US
    style=&#39;font-size:7.0pt;letter-spacing:0pt&#39;&gt;Episodes&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
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&lt;/v:shape&gt;&lt;span lang=EN-US&gt;The remaining parameters of the learning algorithm
were a = 0.2/48, A = 0.9, e = 0, and wo = 0. The use of a greedy policy (^ = 0)
seemed preferable on this task because long sequences of correct actions are
needed to do well. One exploratory action could spoil a whole sequence of good
actions. Exploration was ensured instead &lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
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mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection384&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;by starting the action values
optimistically, at the low value of &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;. As discussed in Section 2.7 and Example 9.2, this makes the agent
continually disappointed with whatever rewards it initially experiences,
driving it to keep trying new things.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Figure 16.6
shows learning curves for the acrobot task and the learning algorithm described
above. Note from the single-run curve that single episodes were sometimes
extremely long. On these episodes, the acrobot was usually spinning repeatedly
at the second joint while the first joint changed only slightly from vertical
down. Although this often happened for many time steps, it always eventually
ended as the action values were driven lower. All runs ended with an efficient
policy for solving the problem, usually lasting about 75 steps. A typical final
solution is shown in&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
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&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection385&gt;

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&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:399.85pt;mso-element-frame-height:
35.5pt;mso-element-frame-hspace:26.65pt;mso-element-wrap:no-wrap-beside;
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  &lt;td valign=top align=left height=47 style=&#39;padding-top:0cm;padding-right:
  26.65pt;padding-bottom:0cm;padding-left:26.65pt&#39;&gt;
  &lt;p class=263 style=&#39;line-height:11.75pt;mso-line-height-rule:exactly;
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  column;mso-element-left:197.55pt;mso-element-top:128.2pt&#39;&gt;&lt;span class=261&gt;&lt;span
  lang=EN-US&gt;Figure 16.7: A typical learned behavior of the acrobot. Each group
  is a series of consecutive positions, the thicker line being the first. The
  arrow indicates the torque applied at the second joint.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
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&lt;/table&gt;

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&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:12.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
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&lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:21.35pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Figure 16.7. First the acrobot
pumps back and forth several times symmetrically, with the second link always
down. Then, once enough energy has been added to the system, the second link is
swung upright and stabbed to the goal height.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:11.0pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l64 level1 lfo91;tab-stops:43.9pt;background:transparent&#39;&gt;&lt;a
name=bookmark263&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;16.4&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=141&gt;&lt;span lang=EN-US&gt;Watson\A1\AFs
Daily-Double Wagering&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;IBM W&lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;atson&lt;a style=&#39;mso-footnote-id:ftn31&#39; href=&#34;#_ftn31&#34; name=&#34;_ftnref31&#34;
title=&#34;&#34;&gt;&lt;sup&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=51CenturySchoolbook4&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA;font-weight:normal&#39;&gt;[31]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;
&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;is the system developed by a
team of IBM researchers to play the popular TV quiz show &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;Jeopardy!.&lt;a
style=&#39;mso-footnote-id:ftn32&#39; href=&#34;#_ftn32&#34; name=&#34;_ftnref32&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=5185pt3&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA;mso-bidi-font-weight:normal;font-style:normal&#39;&gt;[32]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; It gained fame in 2011 by winning first prize in an
exhibition match against human champions. Although the main technical
achievement demonstrated by W&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook4&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;atson &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;was its ability to quickly and accurately answer
natural language questions over broad areas of general knowledge, its win&amp;shy;ning &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;Jeopardy!&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; performance also relied on sophisticated
decision-making strategies for critical parts of the game. Tesauro, Gondek,
Lechner, Fan, and Prager (2012, 2013) adapted Tesauro\A1\AFs TD-Gammon system
described above to create the strategy used by W&lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;atson &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;in \A1\B0Daily-Double\A1\B1
(DD) wagering in its celebrated winning perfor&amp;shy;mance against human champions.
These authors report that the effectiveness of this wagering strategy went well
beyond what human players are able to do in live game play, and that it, along
with other advanced strategies, was an important contributor to W&lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;atson&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;\A1\AFs impressive
winning performance. Here we focus only on DD wager&amp;shy;ing because it is the
component of W&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook4&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;atson &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;that owes the most to reinforcement learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:12.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;Jeopardy!&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; is played by three contestants who face a board
showing 30 squares, each of which hides a clue and has a dollar value. The
squares are arranged in six columns, each corresponding to a different
category. A contestant selects a square, the host reads the square\A1\AFs clue, and
each contestant may choose to respond to the clue by sounding a buzzer
(\A1\B0buzzing in\A1\B1). The first contestant to buzz in gets to try responding to the
clue. If this contestant\A1\AFs response is correct, their score increases by the
dollar value of the square; if their response is not correct, or if they do not
respond within five seconds, their score decreases by that amount, and the
other contestants get a chance to buzz in to respond to the same clue. One or
two squares (depending on the game\A1\AFs current round) are special DD squares. A
contestant who selects one of these gets an exclusive opportunity to respond to
the square\A1\AFs clue and has to decide&lt;/span&gt;&lt;/span&gt;&lt;span class=51MingLiU&gt;&lt;span
style=&#39;font-size:6.0pt;mso-ansi-language:ZH-TW;font-weight:normal&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;before the clue is revealed&lt;/span&gt;&lt;/span&gt;&lt;span
class=51MingLiU&gt;&lt;span style=&#39;font-size:6.0pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;on how much
to wager, or bet. The bet has to be greater than five dollars but not greater
than the contestant\A1\AFs current score. If the contestant responds correctly to
the DD clue, their score increases by the bet amount; otherwise it decreases by
the bet amount. At the end of each game is a \A1\B0Final Jeopardy\A1\B1 (FJ) round in
which each contestant writes down a sealed bet and then writes an answer after
the clue is read. The contestant with the highest score after three rounds of
play (where a round consists of revealing all 30 clues) is the winner. The game
has many other details, but these are enough to appreciate the importance of DD
wagering. Winning or losing often depends on a contestant\A1\AFs DD wagering
strategy.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Whenever W&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;atson &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;selected a DD square, it chose its bet by comparing action values,
q(s, bet), that estimated the probability of a win from the current game state,
s, for each round-dollar legal bet. Except for some risk-abatement measures
described below, W&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;atson &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;selected the bet with the maximum action value. Action values were
computed whenever a betting decision was needed by using two types of estimates
that were learned before any live game play took place. The first were
estimated values of the afterstates (Section &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook1&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;) that would result from selecting each legal bet. These estimates
were obtained from a state-value function, {)(&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;,w), defined by parameters w, that gave estimates of
the probability of a win for W&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;atson &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;from any game state. The second estimates used to compute action
values gave the \A1\B0in&amp;shy;category DD confidence,\A1\B1 p&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;dd&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;, which estimated the likelihood that W&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;atson &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;would respond correctly to the as-yet unrevealed DD
clue.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Tesauro et al. used the reinforcement learning approach of TD-Gammon
described above to learn v(&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;-&lt;/span&gt;&lt;/span&gt;&lt;span class=511pt0&gt;&lt;span
lang=EN-US&gt;,w):&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt; a
straightforward combination of nonlinear TD(A) using a multilayer neural
network with weights w trained by backpropagating TD errors during many
simulated games. States were represented to the network by feature vectors
specifically designed for &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;Jeopardy!.&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; Features included the current scores of the three
players, how many DDs remained, the total dollar value of the remaining clues,
and other information related to the amount of play left in the game. Unlike
TD-Gammon, which learned by self-play, W&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;atson&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;\A1\AFs &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt; was learned over millions of simulated games against
carefully-crafted models of human players. In-category confidence estimates
were conditioned on the number of right responses &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;r&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; and wrong responses &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; that W&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;atson &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;gave in previously-played clues in the current category. The
dependencies on (r, w) were estimated from W&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;atson&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;\A1\AFs actual accuracies over many thousands of
historical categories.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.35pt;
margin-left:0cm;text-indent:11.0pt;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;With the previously learned value function v and in-category DD
confidence &lt;/span&gt;&lt;/span&gt;&lt;span class=51b&gt;&lt;span lang=EN-US&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;dd &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;, W&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;atson &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;computed q(s, bet) for each legal round-dollar bet as follows:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.25pt;
margin-left:28.0pt;line-height:9.5pt;mso-line-height-rule:exactly;tab-stops:
right 398.55pt;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;q(s,
bet) = p&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:
normal&#39;&gt;dd x &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;V(S&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=511pt&gt;&lt;span lang=EN-US&gt;bet,...)
+ &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span class=511pt&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
class=511pt&gt;&lt;span lang=EN-US&gt;p&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;dd&lt;/span&gt;&lt;/span&gt;&lt;span class=511pt&gt;&lt;span
lang=EN-US&gt;) &lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;x &lt;/span&gt;&lt;/span&gt;&lt;span class=511pt&gt;&lt;span lang=EN-US&gt;v(S&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;w \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
class=511pt&gt;&lt;span lang=EN-US&gt;bet,...),&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;(16.2)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;where S&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;is W&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;atson&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;\A1\AFs current score, and v gives the estimated value for the game state
after W&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:
normal&#39;&gt;atson&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;\A1\AFs response to the
DD clue, which is either correct or incorrect. Computing an action value this
way corresponds to the insight from Exercise 3.12 that an action value is the
expected next state value given the action (except that here it is the expected
next &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;
font-weight:normal&#39;&gt;afterstate&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;
value because the full next state of the entire game depends on the next square
selection).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Tesauro et al. found that selecting bets by maximizing action values
incurred \A1\B0a frightening amount of risk,\A1\B1 meaning that if W&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;atson&lt;/span&gt;&lt;/span&gt;&lt;span
class=51b&gt;&lt;span lang=EN-US&gt;\A1\AFs&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;
response to the clue happened to be wrong, the loss could be disastrous for its
chances of winning. To decrease the downside risk of a wrong answer, Tesauro et
al. adjusted (16.2) by subtracting a small fraction of the standard deviation
over W&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:
normal&#39;&gt;atson&lt;/span&gt;&lt;/span&gt;&lt;span class=51b&gt;&lt;span lang=EN-US&gt;\A1\AFs&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; correct/incorrect afterstate evaluataions. They
further reduced risk by prohibiting bets that would cause the wrong-answer
afterstate value to decrease below a certain limit. These measures slightly
reduced W&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:
normal&#39;&gt;atson&lt;/span&gt;&lt;/span&gt;&lt;span class=51b&gt;&lt;span lang=EN-US&gt;\A1\AFs&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; expectation of winning, but they significantly
reduced downside risk, not only in terms of average risk per DD bet, but even
more so in extreme-risk scenarios where a risk-neutral &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;W&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:
normal&#39;&gt;atson &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;would bet most or
all of its bankroll.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Why was the TD-Gammon method of self-play not used to learn the
critical value function v? Learning from self-play in &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;Jeopardy!&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; would not have worked very well because &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;W&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:
normal&#39;&gt;atson &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;was so different
from any human contestant. Self-play would have led to exploration of state
space regions that are not typical for play against human opponents,
particularly human champions. In addition, unlike backgammon, &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;Jeop&amp;shy;ardy!&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; is a game of imperfect information because
contestants do not have access to all the information influencing their
opponents\A1\AF play. In particular, &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;Jeopardy!&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; con&amp;shy;testants do not know how much confidence their
opponents have for responding to clues in the various categories. Self-play
would have been something like playing poker with someone who is holding the
same cards that you hold.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;As a result of these complications, much of the effort in developing
&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook4&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;W&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;atson&lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;\A1\AFs &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;DD-wagering strategy
was devoted to creating good models of human opponents. The models did not
address the natural language aspect of the game, but were instead stochastic
process models of events that can occur during play. Statistics were extracted
from an extensive fan-created archive of game information from the beginning of
the show to the present day. The archive includes information such as the
ordering of the clues, right and wrong contestant answers, DD locations, and DD
and FJ bets for nearly 300,000 clues. Three models were constructed: an Average
Contestant model (based on all the data), a Champion model (based on statistics
from games with the 100 best players), and a Grand Champion model (based on
statistics from games with the 10 best players). In addition to serving as
opponents during learning, the models were used to asses the benefits produced
by the learned DD-wagering strategy. &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;W&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:
normal&#39;&gt;atson&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook4&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;\A1\AFs &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;win rate in simulation when it used a baseline heuristic DD-wagering
strategy was 61%; when it used the learned values and a default confidence
value, its win rate increased to 64%; and with live in-category confidence, it
was 67%. Tesauro et al. regarded this as a significant improvement, given that
the DD wagering was needed only about 1.5 to 2 times in each game.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Because &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook4&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;W&lt;/span&gt;&lt;/span&gt;&lt;span
class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:normal&#39;&gt;atson &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;had only a few seconds to bet, as well as to select
squares and decide whether or not to buzz in, the computation time needed to
make these decisions was a critical factor. The neural network implementation
of v allowed DD bets to be made quickly enough to meet the time constraints of
live play. However, once games could be simulated fast enough through
improvements in the simulation software, near the end of a game it was feasible
to estimate the value of bets by averaging over many Monte-Carlo trials in which
the consequence of each bet was determined by simulating play to the game\A1\AFs
end. Selecting endgame DD bets in live play based on Monte-Carlo trials instead
of the neural network significantly improved &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;W&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:
normal&#39;&gt;atson&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook4&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;\A1\AFs &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;performance because errors in value estimates in endgames could
seriously affect its chances of winning. Making all the decisions via
Monte-Carlo trials might have led to better wagering decisions, but this was
simply impossible given the complexity of the game and the time constraints of
live play.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.2pt;
margin-left:0cm;text-indent:11.0pt;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Although its ability to quickly and accurately answer natural
language questions stands out as &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook4&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:
normal&#39;&gt;W&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:
normal&#39;&gt;atson&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook4&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;\A1\AFs &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;major achievement, all of its sophisticated decision strategies &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:#141414;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection387&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.2pt;
margin-left:0cm;text-indent:11.0pt;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;contributed to its impressive defeat of human champions. According
to Tesauro et al. (&lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;2012&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;):&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:28.0pt;margin-bottom:21.35pt;
margin-left:28.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;... it is plainly evident that
our strategy algorithms achieve a level of quantitative precision and real-time
performance that exceeds human ca&amp;shy;pabilities. This is particularly true in the
cases of DD wagering and endgame buzzing, where humans simply cannot come close
to matching the precise equity and confidence estimates and complex decision
calcu&amp;shy;lations performed by Watson.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.8pt;
margin-left:1.0pt;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l64 level1 lfo91;tab-stops:45.65pt;background:transparent&#39;&gt;&lt;a
name=bookmark264&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;16.5&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=141&gt;&lt;span lang=EN-US&gt;Optimizing
Memory Control&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Most computers
use dynamic random access memory (DRAM) as their main memory because of its low
cost and high capacity. The job of a DRAM memory controller is to efficiently
use the interface between the processor chip and an off-chip DRAM system to
provide the high-bandwidth and low-latency data transfer necessary for high-speed
program execution. A memory controller needs to deal with dynamically changing
patterns of read/write requests while adhering to a large number of timing and
resource constraints required by the hardware. This is a formidable scheduling
problem, especially with modern processors with multiple cores sharing the same
DRAM.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Ipek, Mutlu, Martinez, and Caruana (2008) (also Martinez and Ipek,
2009) de&amp;shy;signed a reinforcement learning memory controller and demonstrated
that it can significantly improve the speed of program execution over what was
possible with conventional controllers at the time of their research. They were
motivated by lim&amp;shy;itations of existing state-of-the-art controllers that used
policies that did not take advantage of past scheduling experience and did not
account for long-term conse&amp;shy;quences of scheduling decisions. Ipek et al.\A1\AFs
project was carried out by means of simulation, but they designed the
controller at the detailed level of the hardware needed to implement
it\A1\AAincluding the learning algorithm\A1\AAdirectly on a processor chip.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Accessing DRAM involves a number of steps that have to be done
according to strict time constraints. DRAM systems consist of multiple DRAM
chips, each con&amp;shy;taining multiple rectangular arrays of storage cells arranged
in rows and columns. Each cell stores a bit as the charge on a capacitor. Since
the charge decreases over time, each DRAM cell needs to be
recharged\A1\AArefreshed\A1\AAevery few milliseconds to prevent memory content from being
lost. This need to refresh the cells is why DRAM is called \A1\B0dynamic.\A1\B1&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Each cell array has a row buffer that holds a row of bits that can
be transferred into or out of one of the array\A1\AFs rows. An &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;activate&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; command \A1\B0opens a row,\A1\B1 which means moving the
contents of the row whose address is indicated by the command into the row
buffer. With a row open, the controller can issue &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;read&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; and &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;write&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; commands to the cell array. Each read command
transfers a word (a short sequence of consecutive bits) in the row buffer to
the external data bus, and each write command transfers a word in the external
data bus to the row buffer. Before a different row can be opened, a &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;precharge&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; command must be issued which transfers the
(possibly updated) data in the row buffer back into the addressed row of the
cell array. After this, another activate command can open a new row to be
accessed. Read and write commands are &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;column commands&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; because they sequentially transfer bits into or out
of columns of the row buffer; multiple bits can be transferred without
re-opening the row. Read and write commands to the currently-open row can be
carried out more quickly than accessing a different row, which would involve
additional &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:
8.5pt;font-weight:normal&#39;&gt;row commands&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;: precharge and activate; this is sometimes referred to as \A1\B0row
locality.\A1\B1 A memory controller maintains a &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;memory transaction queue&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; that stores memory-access requests from the
processors sharing the memory system. The controller has to process requests by
issuing commands to the memory system while adhering to a large number of
timing constraints.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;A controller\A1\AFs policy for scheduling access requests can have a
large effect on the performance of the memory system, such as the average
latency with which requests can be satisfied and the throughput the system is
capable of achieving. The simplest scheduling strategy handles access requests
in the order in which they arrive by issu&amp;shy;ing all the commands required by the
request before beginning to service the next one. But if the system is not
ready for one of these commands, or executing a command would result in
resources being underutilized (e.g., due to timing constraints arising from
servicing that one command), it makes sense to begin servicing a newer request
before finishing the older one. Policies can gain efficiency by reordering
requests, for example, by giving priority to read requests over write requests,
or by giving priority to read/write commands to already open rows. The policy
called First-Ready, First- Come-First-Serve (FR-FCFS), gives priority to column
commands (read and write) over row commands (activate and precharge), and in
case of a tie gives priority to the oldest command. FR-FCFS was shown to
outperform other scheduling policies in terms of average memory-access latency
under conditions commonly encountered (Rixner, 2004).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Figure 16.8 is a high-level view of Ipek et al.\A1\AFs reinforcement
learning memory controller. They modeled the DRAM access process as an MDP
whose states are the contents of the transaction queue and whose actions are
commands to the DRAM system: &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;precharge&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;activate&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;read&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;write&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;, and &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;NoOp&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;. The reward signal is 1 whenever the action is &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;read&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; or &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;write&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;, and otherwise it is 0. State transitions were
considered to be stochastic because the next state of the system not only
depends on the scheduler\A1\AFs command, but also on aspects of the system\A1\AFs
behavior that the scheduler cannot control, such as the workloads of the
processor cores accessing the DRAM system.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Critical to this MDP are constraints on the actions available in
each state. Recall from Chapter 3 that the set of available actions can depend
on the state: At G A(St), where At is the action at time step &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; and A(St) is the set of actions available in state
St. In this application, the integrity of the DRAM system was assured by not
allowing actions that would violate timing or resource constraints. Although
Ipek et al. did not make it explicit, they effectively accomplished this by
pre-defining the sets A(St) for all possible states St.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:211.2pt;mso-element-frame-height:
110.9pt;mso-element-frame-hspace:94.65pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:177.75pt;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=408 height=148&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=148 style=&#39;padding-top:0cm;padding-right:
  94.65pt;padding-bottom:0cm;padding-left:94.65pt&#39;&gt;
  &lt;p class=MsoNormal style=&#39;mso-element:frame;mso-element-frame-width:211.2pt;
  mso-element-frame-height:110.9pt;mso-element-frame-hspace:94.65pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:177.75pt;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:399.1pt;mso-element-frame-height:
59.55pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
mso-element-anchor-horizontal:column;mso-element-left:94.7pt;mso-element-top:
135.4pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=532 height=79&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=79 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=263 style=&#39;line-height:11.75pt;mso-line-height-rule:exactly;
  background:transparent;mso-element:frame;mso-element-frame-width:399.1pt;
  mso-element-frame-height:59.55pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:94.7pt;
  mso-element-top:135.4pt&#39;&gt;&lt;span class=261&gt;&lt;span lang=EN-US&gt;Figure 16.8:
  High-level view of the reinforcement learning DRAM controller. The scheduler
  is the reinforcement learning agent. Its environment is represented by
  features of the trans&amp;shy;action queue, and its actions are commands to the DRAM
  system. &amp;copy;2009 IEEE. Reprinted, with permission, from J. F. Martinez and E.
  Ipek, Dynamic multicore resource management: A machine learning approach,
  Micro, IEEE, 29(5), p. 12.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-width:6.65pt;mso-element-frame-height:
19.2pt;mso-element-frame-hspace:94.65pt;mso-element-wrap:no-wrap-beside;
mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
mso-element-left:396.0pt;mso-element-top:45.15pt;mso-height-rule:exactly;
layout-flow:vertical-ideographic&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 width=135 height=26&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=26 style=&#39;padding-top:0cm;padding-right:
  94.65pt;padding-bottom:0cm;padding-left:94.65pt&#39;&gt;
  &lt;p class=504 style=&#39;line-height:5.5pt;mso-line-height-rule:exactly;
  background:transparent;mso-element:frame;mso-element-frame-width:6.65pt;
  mso-element-frame-height:19.2pt;mso-element-frame-hspace:94.65pt;mso-element-wrap:
  no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
  column;mso-element-left:396.0pt;mso-element-top:45.15pt;mso-height-rule:exactly;
  layout-flow:vertical-ideographic&#39;&gt;&lt;span class=502&gt;&lt;span lang=EN-US&gt;lAJVQCa&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:27.15pt;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;These constraints explain why the MDP has a &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:
normal&#39;&gt;NoOp&lt;/span&gt;&lt;/span&gt;&lt;span class=5175pt&gt;&lt;span lang=EN-US style=&#39;font-size:
7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;action
and why the reward signal is 0 except when a &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:
normal&#39;&gt;read&lt;/span&gt;&lt;/span&gt;&lt;span class=5175pt&gt;&lt;span lang=EN-US style=&#39;font-size:
7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;or &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:
normal&#39;&gt;write&lt;/span&gt;&lt;/span&gt;&lt;span class=5175pt&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;command is issued. &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook2&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;NoOp&lt;/span&gt;&lt;/span&gt;&lt;span
class=5175pt&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;is issued when it is the sole legal action in a
state. To maximize utilization of the memory system, the controller\A1\AFs task is
to drive the system to states in which either a &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:
normal&#39;&gt;read&lt;/span&gt;&lt;/span&gt;&lt;span class=5175pt&gt;&lt;span lang=EN-US style=&#39;font-size:
7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;or a &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:
normal&#39;&gt;write &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;action can be
selected: only these actions result in sending data over the external data bus,
so it is only these that contribute to the throughput of the system. Although &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:
normal&#39;&gt;precharge&lt;/span&gt;&lt;/span&gt;&lt;span class=5175pt&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook2&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;activate&lt;/span&gt;&lt;/span&gt;&lt;span
class=5175pt&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt;produce no immediate reward, the agent needs to
select these actions to make it possible to later select the rewarded &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:
normal&#39;&gt;read&lt;/span&gt;&lt;/span&gt;&lt;span class=5175pt&gt;&lt;span lang=EN-US style=&#39;font-size:
7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span
class=51CenturySchoolbook2&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:
normal&#39;&gt;write&lt;/span&gt;&lt;/span&gt;&lt;span class=5175pt&gt;&lt;span lang=EN-US
style=&#39;font-size:7.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;actions.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The scheduling agent used Sarsa (Figure 6.4) to learn an
action-value function. States were represented by six integer-valued features.
To approximate the action- value function, the algorithm used linear function
approximation implemented by tile coding with hashing (Section 9.5.4). The tile
coding had 32 tilings, each storing 256 action values as 16-bit fixed point
numbers. Exploration was e-greedy with e = 0.05.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;State features included the number of read requests in the
transaction queue, the number of write requests in the transaction queue, the
number of write requests in the transaction queue waiting for their row to be
opened, and the number of read requests in the transaction queue waiting for
their row to be opened that are the oldest issued by their requesting
processors. (The other features depended on how the DRAM interacts with cache
memory, details we omit here.) The selection of the state features was based on
Ipek et al.\A1\AFs understanding of factors that impact DRAM performance. For
example, balancing the rate of servicing reads and writes based on how many of
each are in the transaction queue can help avoid stalling the DRAM system\A1\AFs
interaction with cache memory. The authors in fact generated a relatively long
list of potential features, and then pared them down to a handful using
simulations guided by stepwise feature selection.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;An interesting aspect of this formulation of the scheduling problem
as an MDP is that the features input to the tile coding for defining the
action-value function were different from the features used to specify the
action-constraint sets A(St). Whereas the tile coding input was derived from
the contents of the transaction queue, the constraint sets depended on a host
of other features related to timing and resource constraints that had to be
satisfied by the hardware implementation of the entire system. In this way, the
action constraints ensured that the learning algorithm\A1\AFs ex&amp;shy;ploration could not
endanger the integrity of the physical system, while learning was effectively
limited to a \A1\B0safe\A1\B1 region of the much larger state space of the hardware
implementation.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Since an
objective of this work was that the learning controller could be imple&amp;shy;mented
on a chip so that learning could occur on-line while a computer is running,
hardware implementation details were important considerations. The design
included two five-stage pipelines to calculate and compare two action values at
every processor clock cycle, and to update the appropriate action value. This
included accessing the tile coding which was stored on-chip in static RAM. For
the configuration Ipek et al. simulated, which was a 4GHz 4-core chip typical
of high-end workstations at the time of their research, there were 10 processor
cycles for every DRAM cycle. Consid&amp;shy;ering the cycles needed to fill the pipes,
up to &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;
actions could be evaluated in each DRAM cycle. Ipek et al. found that the
number of legal commands for any state was rarely greater than this, and that
performance loss was negligible if enough time was not always available to
consider all legal commands. These and other clever design details made it
feasible to implement the complete controller and learning algorithm on a
multi-processor chip.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Ipek et al.
evaluated their learning controller in simulation by comparing it with three
other controllers: 1) the FR-FCFS controller mentioned above that produces the
best on-average performance, &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;) a conventional controller that processes each request in order,
and 3) an unrealizable ideal controller, called the Optimistic con&amp;shy;troller,
able to sustain 100% DRAM throughput if given enough demand by ignoring all
timing and resource constraints, but otherwise modeling DRAM latency (as row
buffer hits) and bandwidth. They simulated nine memory-intensive parallel work&amp;shy;loads
consisting of scientific and data-mining applications. Figure 16.9 shows the
performance (the inverse of execution time normalized to the performance of FR-
FCFS) of each controller for the nine applications, together with the geometric
mean of their performances over the applications. The learning controller,
labeled RL in the figure, improved over that of FR-FCFS by from 7% to 33% over
the nine ap&amp;shy;plications, with an average improvement of 19%. Of course, no
realizable controller can match the performance of Optimistic, which ignores
all timing and resource con&amp;shy;straints, but the learning controller\A1\AFs performance
closed the gap with Optimistic\A1\AFs upper bound by an impressive 27%.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;Because the
rationale for on-chip implementation of the learning algorithm was to allow the
scheduling policy to adapt on-line to changing workloads, Ipek et al. analyzed
the impact of on-line learning compared to a previously-learned fixed policy.
They trained their controller with data from all nine benchmark applications
and then held the resulting action values fixed throughout the simulated
execution of the applications. They found that the average performance of the
controller that learned&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:#141414;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection388&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:101.3pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=135 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=135 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:101.3pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=263 style=&#39;line-height:12.0pt;mso-line-height-rule:exactly;
  background:transparent;mso-element:frame;mso-element-frame-height:101.3pt;
  mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span class=261&gt;&lt;span lang=EN-US&gt;Figure 16.9: Performances of four
  controllers over a suite of 9 simulated benchmark ap&amp;shy;plications. The
  controllers are: the simplest \A1\AEin-order\A1\AF controller, FR-FCFS, the learning
  controller RL, and the unrealizable Optimistic controller which ignores all
  timing and re&amp;shy;source constraints to provide a performance upper bound.
  Performance, normalized to that of FR-FCFS, is the inverse of execution time.
  At far right is the geometric mean of perfor&amp;shy;mances over the 9 benchmark
  applications for each controller. Controller RL comes closest to the ideal
  performance. @2009 IEEE. Reprinted, with permission, from J. F. Martinez and
  E. Ipek, Dynamic multicore resource management: A machine learning approach,
  Micro, IEEE, 29(5), p. 13.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-top:21.45pt;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;on-line was &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span
lang=EN-US style=&#39;font-weight:normal&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;% better than that of the controller using the fixed policy, leading
them to conclude that on-line learning is an important feature of their
approach.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-bottom:24.35pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;This learning memory controller was never committed to physical
hardware be&amp;shy;cause of the large cost of fabrication. Nevertheless, Ipek et al.
could convincingly argue on the basis of their simulation results that a memory
controller that learns on-line via reinforcement learning has the potential to
improve performance to levels that would otherwise require more complex and
more expensive memory systems, while removing from human designers some of the
burden required to manually de&amp;shy;sign efficient scheduling policies. Mukundan and
Martinez (2012) took this project forward by investigating learning controllers
with additional actions, other perfor&amp;shy;mance criteria, and more complex reward
functions derived using genetic algorithms. They considered additional
performance criteria related to energy efficiency. The re&amp;shy;sults of these
studies surpassed the earlier results described above and significantly
surpassed the &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;2012&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;
state-of-the-art for all of the performance criteria they consid&amp;shy;ered. The
approach is especially promising for developing sophisticated power-aware DRAM
interfaces.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=145 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l64 level1 lfo91;tab-stops:44.4pt;background:transparent&#39;&gt;&lt;a
name=bookmark265&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;16.6&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span class=141&gt;&lt;span lang=EN-US&gt;Human-level
Video Game Play&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;One of the greatest
challenges in applying reinforcement learning to real-world prob&amp;shy;lems is
deciding how to represent and store value functions and/or policies. Unless the
state set is finite and small enough to allow exhaustive representation by a
lookup table\A1\AAas in many of our illustrative examples\A1\AAone must use a
parameterized func&amp;shy;tion approximation scheme. Whether linear or non-linear,
function approximation relies on features that have to be readily accessible to
the learning system and able to convey the information necessary for skilled
performance. Most successful appli&amp;shy;cations of reinforcement learning owe much
to sets of features carefully handcrafted based on human knowledge and
intuition about the specific problem to be tackled.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;A team of researchers at Google DeepMind developed an impressive
demonstra&amp;shy;tion that a deep multi-layer artificial neural network (ANN) can
automate the feature design process (Mnih et al., 2015). Multi-layer ANNs have
been used for function ap&amp;shy;proximation in reinforcement learning ever since the
1986 popularization of the back- propagation algorithm as a method for learning
internal representations (Rumelhart, Hinton, and Williams, 1986; see Section &lt;/span&gt;&lt;/span&gt;&lt;span
class=519&gt;&lt;span lang=EN-US&gt;9.6).&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;
Striking results have been obtained by coupling reinforcement learning with
backpropagation. The results obtained by Tesauro and colleages with TD-Gammon
and W&lt;/span&gt;&lt;/span&gt;&lt;span class=51Batang2&gt;&lt;span lang=EN-US style=&#39;font-weight:
normal&#39;&gt;atson &lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt;discussed above
are notable examples. These and other applications benefited from the ability
of multi-layer ANNs to learn task-relevant features. However, in all the
examples of which we are aware, the most impressive demonstrations required the
network\A1\AFs input to be rep&amp;shy;resented in terms of specialized features handcrafted
for the given problem. This is vividly apparent in the TD-Gammon results.
TD-Gammon 0.0, whose network in&amp;shy;put was essentially a \A1\B0raw\A1\B1 representation of
he backgammon board, meaning that it involved very little knowledge of
backgammon, learned to play approximately as well as the best previous
backgammon computer programs. Adding specialized backgam&amp;shy;mon features produced
TD-Gammon 1.0 which was substantially better than all previous backgammon
programs and competed well against human experts.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Mnih et al. developed a reinforcement learning agent called &lt;/span&gt;&lt;/span&gt;&lt;span
class=5185pt3&gt;&lt;span lang=EN-US style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;deep
Q-network&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt; (DQN) that combined
Q-learning with a &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;deep convolutional&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; ANN, a many-layered, or deep, ANN specialized for
processing spatial arrays of data such as images. We describe deep
convolutional ANNs in Section 9.6. By the time of Mnih et al.\A1\AFs work with DQN,
deep ANNs, including deep convolutional ANNs, had produced impressive results
in many applications, but they had not been widely used in reinforcement
learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Mnih et al. used DQN to show how a single reinforcement learning agent
can achieve high levels of performance in many different problems without
relying on different problem-specific feature sets. To demonstrate this, they
let DQN learn to play 49 different Atari 2600 video games by interacting with a
game emulator. For learning each game, DQN used the same raw input, the same
network architecture, and the same parameter values (e.g., step-size, discount
rate, exploration parame&amp;shy;ters, and many more specific to the implementation).
DQN achieved levels of play at or beyond human level on a large fraction of
these games. Although the games were alike in being played by watching streams
of video images, they varied widely in other respects. Their actions had
different effects, they had different state-transition dynamics, and they
needed different policies for earning high scores. The deep con&amp;shy;volutional ANN
learned to transform the raw input common to all the games into features
specialized for representing the action values required for playing at the high
level DQN achieved for most of the games.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;The Atari 2600 is a home video game console that was sold in various
versions by Atari Inc. from 1977 to 1992. It introduced or popularized many
arcade video games that are now considered classics, such as Pong, Breakout,
Space Invaders, and Asteroids. Although much simpler than modern video games,
Atari 2600 games are still entertaining and challenging for human players, and
they have been attractive as testbeds for developing and evaluating
reinforcement learning methods (Diuk, Co&amp;shy;hen, Littman, 2008; Naddaf, 2010;
Cobo, Zang, Isbell, and Thomaz, 2011; Bellemare, Veness, and Bowling, 2012).
Bellemare, Naddaf, Veness, and Bowling (2012) devel&amp;shy;oped the publicly available
Arcade Learning Environment (ALE) to encourage and simplify using Atari 2600
games to study learning and planning algorithms.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;These previous studies and the availability of ALE made the Atari
2600 game collection a good choice for Mnih et al.\A1\AFs demonstration, which was
also influenced by the impressive human-level performance that TD-Gammon was
able to achieve in backgammon. DQN is similar to TD-Gammon in using a
multi-layer ANN as the function approximation method for a semi-gradient form
of a TD algorithm, with the gradients computed by the backpropagation
algorithm. However, instead of using TD(A) as TD-Gammon did, DQN used the
semi-gradient form of Q-learning. TD-Gammon estimated the values of
afterstates, which were easily obtained from the rules for making backgammon
moves. To use the same algorithm for the Atari games would have required
generating the next states for each possible action (which would not have been
afterstates in that case). This could have been done by using the game emulator
to run single-step simulations for all the possible actions (which ALE makes
possible). Or a model of each game\A1\AFs state-transition function could have been
learned and used to predict next states (Oh, Guo, Lee, Lewis, and Singh, 2015).
While these methods might have produced results comparable to DQN\A1\AFs, they would
have been more complicated to implement and would have significantly increased
the time needed for learning. Another motivation for using Q-learning was that
DQN used the &lt;/span&gt;&lt;/span&gt;&lt;span class=5185pt3&gt;&lt;span lang=EN-US
style=&#39;font-size:8.5pt;font-weight:normal&#39;&gt;experience replay&lt;/span&gt;&lt;/span&gt;&lt;span
class=518&gt;&lt;span lang=EN-US&gt; method, described below, which requires an
off-policy algorithm. Being model-free and off-policy made Q-learning a natural
choice.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=51d style=&#39;margin-right:1.0pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=518&gt;&lt;span
lang=EN-US&gt;Before describing the details of DQN and how the experiments were
conducted, we look at the skill levels DQN was able to achieve. Mnih et al.
compared the scores of DQN with the scores of the best performing learning
system in the literature at the time, the scores of a professional human games
tester, and the scores of an agent that selected actions at random. The best
system from the literature used linear function approximation with features
hand designed using some knowledge about Atari 2600 games (Bellemare, Naddaf,
Veness, and Bowling, 2012). DQN learned on each game by interacting with the
game emulator for 50 million frames, which corresponds to about 38 days of
experience with the game. At the start of learning on each game, the weights of
DQN\A1\AFs network were reset to random values. To evaluate DQN\A1\AFs skill level after
learning, its score was averaged over 30 sessions on each game, each lasting up
to 5 minutes and beginning with a random initial game state. The professional
human tester played using the same emulator (with the sound turned off to
remove any possible advantage over DQN which did not process audio). After 2
hours of practice, the human played about 20 episodes of each game for up to 5
minutes each and was not allowed to take any break during this time. DQN
learned to play better than the best previous reinforcement learning systems on
all but &lt;/span&gt;&lt;/span&gt;&lt;span class=51CenturySchoolbook1&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span class=518&gt;&lt;span lang=EN-US&gt; of
the games, &lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;and played better than the human player on 22 of the games. By
considering any performance that scored at or above 75% of the human score to
be comparable to, or better than, human-level play, Mnih et al. concluded that
the levels of play DQN learned reached or exceeded human level on 29 of the 46
games. See Mnih et al. (2015) for a more detailed account of these results.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;For an artificial learning system
to achieve these levels of play would be impressive enough, but what makes
these results remarkable\A1\AAand what many at the time con&amp;shy;sidered to be
breakthrough results for artificial intelligence\A1\AAis that the very same learning
system achieved these levels of play on widely varying games without relying on
any game-specific modifications.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;A human playing any of these 46
Atari games sees 210 x 160 pixel image frames with 128 colors at 60Hz. In
principle, exactly these images could have formed the raw input to DQN, but to
reduce memory and processing requirements, Mnih et al. preprocessed each frame
to produce an 84 x 84 array of luminance values. Since the full states of many
of the Atari games are not completely observable from the image frames, Mnih et
al. \A1\B0stacked\A1\B1 the four most recent frames so that the inputs to the network had
dimension 84x84x4. This did not eliminate partial observability for all of the
games, but it was helpful in making many of them more Markovian.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;An essential point here is that
these preprocessing steps were exactly the same for all 46 games. No
game-specific prior knowledge was involved beyond the gen&amp;shy;eral understanding
that it should still be possible to learn good policies with this reduced
dimension and that stacking adjacent frames should help with the partial
observability of some of the games. Since no game-specific prior knowledge
beyond this minimal amount was used in preprocessing the image frames, we can
think of the 84x84x 4 input vectors as being \A1\B0raw\A1\B1 input to DQN.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;The basic architecture of DQN is
similar to the deep convolutional ANN illustrated in Figure 9.15 (though unlike
that network, subsampling in DQN is treated as part of each convolutional
layer, with feature maps consisting of units having only a selection of the
possible receptive fields). DQN has three hidden convolutional layers, followed
by one fully connected hidden layer, followed by the output layer. The three
successive hidden convolutional layers of DQN produce 32 20 x 20 feature maps,
64 9x9 feature maps, and 64 7x7 feature maps. The activation function of the
units of each feature map is a rectifier nonlinearity (max(0, x)). The 3,136
(64x7x7) units in this third convolutional layer all connect to each of 512
units in the fully connected hidden layer, which then each connect to all 18
units in the output layer, one for each possible action in an Atari game.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.35pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=431&gt;&lt;span
lang=EN-US&gt;The activation levels of DQN\A1\AFs output units were the estimated
optimal action values (optimal Q-values) of the corresponding state-action
pairs, for the state rep&amp;shy;resented by the network\A1\AFs input. The assignment of
output units to a game\A1\AFs actions varied from game to game, and since the number
of valid actions varied between 4 and 18 for the games, not all output units
had functional roles in all of the games. It helps to think of the network as
if it were 18 separate networks, one for estimating the optimal action value of
each possible action. In reality, these networks shared their initial layers,
but the output units learned to use the features extracted by these layers in
different ways.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;DQN\A1\AFs reward signal indicated how
a games\A1\AFs score changed from one time step to the next: &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia2&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;+1&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt; whenever it increased, &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia2&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt; whenever it decreased, and &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia2&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;0&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt; otherwise. This standardized the reward signal
across the games and made a single step-size parameter work well for all the
games despite their varying ranges of scores. DQN used an &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;e&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;-greedy policy, with &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;e &lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;decreasing linearly over the first million frames
and remaining at a low value for the rest of the learning session. The values
of the various other parameters, such as the learning step-size, discount rate,
and others specific to the implementation, were selected by performing informal
searches to see which values worked best for a small selection of the games.
These values were then held fixed for all of the games.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:9.15pt;
margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;After DQN selected an action, the action was
executed by the game emulator, which returned a reward and the next video
frame. The frame was preprocessed and added to the four-frame stack that became
the next input to the network. Skipping for the moment the changes to the basic
Q-learning procedure made by Mnih et al., DQN used the following semi-gradient
form of Q-learning to update the network\A1\AFs weights:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-left:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:9.5pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;a name=bookmark266&gt;&lt;span class=affffe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
style=&#39;mso-bookmark:bookmark266&#39;&gt;&lt;span class=ArialUnicodeMSff9&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=affffe&gt;&lt;span
lang=EN-US&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark266&#39;&gt;&lt;span
class=ArialUnicodeMSff9&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span
class=affffe&gt;&lt;span lang=EN-US&gt;w&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:
bookmark266&#39;&gt;&lt;span class=ArialUnicodeMSff9&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;t + &lt;/span&gt;&lt;/span&gt;&lt;span class=affffe&gt;&lt;span lang=EN-US&gt;a R&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark266&#39;&gt;&lt;span class=ArialUnicodeMSff9&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=affffe&gt;&lt;span
lang=EN-US&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark266&#39;&gt;&lt;span
class=ArialUnicodeMSff9&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark266&#39;&gt;&lt;span class=9ptf&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=affffe&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
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lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;max&lt;/span&gt;&lt;/span&gt;&lt;span class=affffe&gt;&lt;span
lang=EN-US&gt;q&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark266&#39;&gt;&lt;span
class=ArialUnicodeMSff9&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=affffe&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:
bookmark266&#39;&gt;&lt;span class=ArialUnicodeMSff9&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=affffe&gt;&lt;span lang=EN-US&gt;+i, a, w&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark266&#39;&gt;&lt;span class=ArialUnicodeMSff9&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;t) &lt;/span&gt;&lt;/span&gt;&lt;span class=affffe&gt;&lt;span
lang=EN-US&gt;\A1\AA q&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark266&#39;&gt;&lt;span
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style=&#39;mso-bookmark:bookmark266&#39;&gt;&lt;span class=ArialUnicodeMSff9&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=affffe&gt;&lt;span
lang=EN-US&gt;, w&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark266&#39;&gt;&lt;span
class=ArialUnicodeMSff9&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;t) &lt;/span&gt;&lt;/span&gt;&lt;span
class=affffe&gt;&lt;span lang=EN-US&gt;Vw&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:
bookmark266&#39;&gt;&lt;span class=CenturySchoolbookfe&gt;&lt;sub&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;t&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span class=affffe&gt;&lt;span
lang=EN-US&gt;q&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark266&#39;&gt;&lt;span
class=ArialUnicodeMSff9&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=affffe&gt;&lt;span lang=EN-US&gt;S&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:
bookmark266&#39;&gt;&lt;span class=ArialUnicodeMSff9&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=affffe&gt;&lt;span lang=EN-US&gt;, A&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark266&#39;&gt;&lt;span class=ArialUnicodeMSff9&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=affffe&gt;&lt;span
lang=EN-US&gt;, w&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:bookmark266&#39;&gt;&lt;span
class=ArialUnicodeMSff9&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;t)&lt;/span&gt;&lt;/span&gt;&lt;span
class=affffe&gt;&lt;span lang=EN-US&gt;, &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-bookmark:
bookmark266&#39;&gt;&lt;span class=ArialUnicodeMSff9&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;(16.3)&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.6pt;
margin-left:83.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
9.0pt;mso-line-height-rule:exactly;tab-stops:right 283.4pt;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;La&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=43MingLiU3&gt;&lt;span style=&#39;font-size:5.5pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;\A1\B9&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;where &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t is the vector of the network\A1\AFs weights, &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t is the action selected at time step &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;, and &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t and &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;are respectively the preprocessed image stacks input
to the network at time steps &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;and &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;t &lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;The gradient in (16.3) was
computed by backpropagation. Imagining again that there was a separate network
for each action, for the update at time step &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;, back- propagation was applied only to the network
corresponding to &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span
lang=EN-US&gt;t. Mnih et al. took advantage of techniques shown to improve the
basic backpropagation algorithm when applied to large networks. They used a &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;mini-batch
method&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt; that updated weights only
after accumulating gradient information over a small batch of images (here
after 32 images). This yielded smoother sample gradients compared to the usual
procedure that updates weights after each action. They also used a gradient-ascent
algorithm called RMSProp (Tieleman and Hinton, 2012) that accelerates learning
by adjusting the step-size parameter for each weight based on a running average
of the magnitudes of recent gradients for that weight.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Mnih et al. modified the basic
Q-learning procedure in three ways. First, they used a method called &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;experience
replay&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt; first studied by Lin
(1992). This method stores the agent\A1\AFs experience at each time step in a replay
memory that is accessed to perform the weight updates. It worked like this in
DQN. After the game emulator executed action &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;A&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t in a state represented by the image stack &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t, and returned reward &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;R&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;and image stack &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;, it added the tuple (&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;, A&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;, R&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;+i, S&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;) to the replay memory. This memory accumulated
experiences over many plays of the same game. At each time step multiple
Q-learning updates\A1\AAa mini-batch\A1\AAwere performed based on experiences sampled
uniformly at random from the replay memory. Instead of &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;becoming the new &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;S&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t for the next update as it would in the usual form
of Q-learning, a new unconnected experience was drawn from the replay memory to
supply data for the next update. Since Q-learning is an off-policy algorithm,
it does not need to be applied along connected trajectories.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;Q-learning with experience replay provided several
advantages over the usual form of Q-learning. The ability to use each stored
experience for many updates allowed DQN to learn more efficiently from its
experiences. Experience replay reduced the variance of the updates because
successive updates were not correlated with one another as they would be with
standard Q-learning. And by removing the dependence of successive experiences
on the current weights, experience replay eliminated one source of instability.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;Mnih et al. modified standard Q-learning in a second
way to improve its stability. As in other methods that bootstrap, the target
for a Q-learning update depends on the current action-value function estimate.
When a parameterized function approx&amp;shy;imation method is used to represent action
values, the target is a function of the same parameters that are being updated.
For example, the target in the update given by (16.3) is &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia2&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;max&lt;sub&gt;a&lt;/sub&gt; q(St&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;,a, &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang7&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t). Its dependence on &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang7&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t complicates the pro&amp;shy;cess compared to the simpler
supervised-learning situation in which the targets do not depend on the
parameters being updated. As discussed in Chapter &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia2&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;11&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt; this can lead to oscillations and/or divergence.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-bottom:9.15pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;To address this problem Mnih et
al. used a technique that brought Q-learning closer to the simpler
supervised-learning case while still allowing it to bootstrap. Whenever a
certain number, &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;C&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span
lang=EN-US&gt;, of updates had been done to the weights &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang7&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;of the action value network, they inserted the
network\A1\AFs current weights into another network and held these duplicate weights
fixed for the next C updates of &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang7&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;. The outputs of this duplicate network over the
next C updates of &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang7&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;w &lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span
lang=EN-US&gt;were used as the Q-learning targets. Letting &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;q&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt; denote the output of this duplicate network, then
instead of (16.3) the update rule was:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 align=right style=&#39;margin-right:10.0pt;text-align:right;
line-height:9.5pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=43Batang7&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang7&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t + a Rt&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;+ Ymaxq(St&lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;,a, &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang7&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t) &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;- &lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;q(St, At, &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang7&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t) &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;Vw&lt;/span&gt;&lt;/span&gt;&lt;span
class=43CenturySchoolbook3&gt;&lt;sub&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
font-weight:normal&#39;&gt;&amp;pound;&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;q(St,
At, &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang7&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;
font-weight:normal&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;t).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:1.55pt;
margin-left:101.0pt;text-align:justify;text-justify:inter-ideograph;line-height:
9.0pt;mso-line-height-rule:exactly;tab-stops:304.3pt;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;La&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=43MingLiU3&gt;&lt;span style=&#39;font-size:5.5pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;\A1\B9&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;line-height:
13.2pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=431&gt;&lt;span
lang=EN-US&gt;A final modification of standard Q-learning was also found to
improve stability. They clipped the error term Rt&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;+i &lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;+ Y max&lt;sub&gt;a&lt;/sub&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=43MingLiU3&gt;&lt;span style=&#39;font-size:5.5pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;\8CT&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;(St&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;, a, &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang7&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t) &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang6&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;\A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;q(St, At, &lt;/span&gt;&lt;/span&gt;&lt;span class=43Batang7&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;w&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;t) so that it remained in the interval [&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Batang6&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;\A1\AA&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia2&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;,&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;].&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;Mnih et al. conducted a large number of learning
runs on 5 of the games to gain insight into the effect that various of DQN\A1\AFs
design features had on its performance. They ran DQN with the four combinations
of experience replay and the duplicate target network being included or not
included. Although the results varied from game to game, each of these features
alone significantly improved performance, and very dramatically improved
performance when used together. Mnih et al. also studied the role played by the
deep convolutional ANN in DQN\A1\AFs learning ability by comparing the deep
convolutional version of DQN with a version having a network of just one linear
layer, both receiving the same stacked preprocessed video frames. Here, the
improvement of the deep convolutional version over the linear version was
particularly striking across all 5 of the test games.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-bottom:24.15pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.2pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Creating artificial agents that
excel over a diverse collection of challenging tasks has been an enduring goal
of artificial intelligence. The promise of machine learning &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection389&gt;

&lt;p class=436 style=&#39;margin-bottom:24.15pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.2pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;as a means for achieving this has
been frustrated by the need to craft problem-specific representations.
DeepMind\A1\AFs DQN stands as a major step forward by demonstrating that a single
agent can learn problem-specific features enabling it to acquire human-
competitive skills over a range of tasks. But as Mnih et al. point out, DQN is
not a complete solution to the problem of task-independent learning. Although
the skills needed to excel on the Atari games were markedly diverse, all the
games were played by observing video images, which made a deep convolutional
ANN a natural choice for this collection of tasks. In addition, DQN\A1\AFs
performance on some of the Atari 2600 games fell considerably short of human
skill levels on these games. The games most difficult for DQN\A1\AAespecially
Montezuma\A1\AFs Revenge on which DQN learned to perform about as well as the random
player\A1\AArequire deep planning beyond what DQN was designed to do. Further,
learning control skills through extensive practice, like DQN learned how to
play the Atari games, is just one of the types of learning humans routinely
accomplish. Despite these limitations, DQN advanced the state-of- the-art in
machine learning by impressively demonstrating the promise of combining
reinforcement learning with modern methods of deep learning.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=167 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.35pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l18 level1 lfo93;tab-stops:44.4pt;background:transparent&#39;&gt;&lt;a
name=bookmark267&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;16.7&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Mastering the Game of Go&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=431&gt;&lt;span
lang=EN-US&gt;The ancient Chinese game of Go has challenged artificial
intelligence researchers for many decades. Methods that achieve human-level
skill, or even superhuman-level skill, in other games have not been successful
in producing strong Go programs. Thanks to a very active community of Go
programmers and international competi&amp;shy;tions, the level of Go program play has
improved significantly over the years. Until recently, however, no Go program
had been able to play anywhere near the level of a human Go master. Here we
describe a program called AlphaGo developed by a Google DeepMind team (Silver
et al., 2016) that broke this barrier by combin&amp;shy;ing deep artificial neural
networks (deep ANNs, Section 9.6), supervised learning, Monte Carlo tree search
(MCTS, Section 8.11), and reinforcement learning. By the time of Silver et
al.\A1\AFs 2016 publication, AlphaGo had been shown to be decisively stronger than
other current Go programs, and it had defeated the human European Go champion 5
games to 0. These were the first victories of a Go program over a human professional
Go player without handicap in full Go games. Shortly thereafter, AlphaGo went
on to stunning victories over an 18-time world champion Go player, winning 4
out of a 5 games in a challenge match, making worldwide headline news.
Artificial intelligence researchers thought that it would be many more years,
perhaps decades, for a program to reach this level of play.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;In many ways, AlphaGo is a descendant of Tesauo\A1\AFs
TD-Gammon (Section 16.1), itself a descendant of Samuel\A1\AFs checkers player
(Section 16.2). AlphaGo, like these earlier programs, used reinforcement
learning with function approximation over many simulated games. AlphaGo also
built upon the progress made by Google DeepMind on playing Atari games with the
program DQN (Section 16.6) by approximating value functions with deep
convolutional ANNs. By using a novel variant of MCTS, AlphaGo extended the
technology responsible for the impressive gains of the most successful
preceding Go programs. But AlphaGo was not a simple combination of these
technologies: it combined them in a highly-engineered way that was perhaps
critical for AlphaGo\A1\AFs impressive performance. Another element of AlphaGo was
its distributed architecture: many of its computations were executed in
parallel on many processors so that it could select moves quickly enough to
meet the time constraints of live play. Although this contributed to AlphaGo\A1\AFs
success, most of its playing skill was due to algorithmic innovations, and here
we neglect AlphaGo\A1\AFs distributed architecture.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:15.3pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;Go is a game between two players who alternately
place black and white \A1\AEstones\A1\AF on unoccupied intersections, or \A1\AEpoints,\A1\AF on a
board with a grid of 19 horizontal and 19 vertical lines (Figure 16.10). The
game\A1\AFs goal is to capture an area of the board larger than that captured by the
opponent. Stones are captured according to simple rules. A player\A1\AFs stones are
captured if they are completely surrounded by the other player\A1\AFs stones,
meaning that there is no horizontally or vertically adjacent point that is
unoccupied. For example, Figure 16.11 shows on the left three white stones with
an unoccupied adjacent point (labeled X). If player black places a stone on X,
the three white stones are captured and taken off the board (Figure 16.11
middle). However, if player white were to place a stone on point X first, than
the possibility of this capture would be blocked (Figure 16.11 right). Other
rules are needed to prevent infinite capturing/re-capturing loops. The game
ends when neither player wishes to place another stone. These rules are simple,
but they produce a very complex game that has had wide appeal for thousands of
years.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:175.9pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=235 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=235 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:175.9pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=8b align=left style=&#39;text-align:left;line-height:9.0pt;mso-line-height-rule:
  exactly;background:transparent;mso-element:frame;mso-element-frame-height:
  175.9pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span class=87&gt;&lt;span lang=EN-US&gt;Figure 16.10: A Go board
  configuration.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:15.15pt;margin-right:1.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Methods that produce strong play
for other games, such as chess, have not worked as well for Go. The search
space for Go is significantly larger than that of chess because Go has a larger
number of legal moves per position than chess (^ 250 versus &lt;/span&gt;&lt;/span&gt;&lt;span
class=43MingLiU4&gt;&lt;span style=&#39;font-size:4.5pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;\B0\D1&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;35) and Go games tend to involve more moves
than chess games (^ 150 versus ^ 80). But the size of the search space is not
the major factor that makes Go so difficult. Exhaustive search is infeasible
for both chess and Go, and Go on smaller&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=146 style=&#39;margin-bottom:0cm;margin-bottom:.0001pt;line-height:87.5pt;
mso-line-height-rule:exactly;mso-pagination:lines-together;page-break-after:
avoid;background:transparent&#39;&gt;&lt;a name=bookmark268&gt;&lt;span lang=ZH-TW
style=&#39;mso-ansi-language:ZH-TW&#39;&gt;_&lt;/span&gt;&lt;/a&gt;&lt;span style=&#39;mso-bookmark:bookmark268&#39;&gt;&lt;span
class=14MingLiU1&gt;&lt;span style=&#39;font-size:50.5pt;mso-ansi-language:ZH-TW&#39;&gt;\EBs&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-bookmark:bookmark268&#39;&gt;&lt;span lang=ZH-TW style=&#39;mso-ansi-language:
ZH-TW&#39;&gt;_&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:16.65pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
11.75pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=431&gt;&lt;span
lang=EN-US&gt;Figure 16.11: Go capturing rule. Left: the three white stones are
not surrounded because point X is unoccupied. Middle: if black places a stone
on X, the three white stones are captured and removed from the board. Right: if
white places a stone on point X first, the capture is blocked.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;boards, e.g., 9 x 9, has proven to be exceedingly
difficult as well. Experts agree that the major stumbling block to creating
stronger-than-amateur Go programs is the difficulty of defining an adequate
position evaluation function. A good evaluation function allows search to be
truncated at a feasible depth by providing relatively easy- to-compute
predictions of what deeper search would likely yield. According to Muller (&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia2&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;2002&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;): \A1\B0No simple yet reasonable evaluation function
will ever be found for Go.\A1\B1 A major step forward was the introduction of MCTS
to Go programs, which does not attempt to store an evaluation function, instead
evaluating moves at decision time by running many Monte Carlo simulations of
entire games. The strongest programs at the time of AlphaGo\A1\AFs development all
used MCTS, but master-level skill remained elusive.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;The main innovation of AlphaGo is
its use of a variant of MCTS called \A1\B0asyn&amp;shy;chronous policy and value MCTS,\A1\B1 or
APV-MCTS. APV-MCTS selects moves via basic MCTS as described in Section 8.11
and illustrated in Figure 8.13, but with some twists in terms of how policies
and value functions are computed and ultimately how each move is chosen. In
addition to the &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;tree policy&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt; for traversing the search tree, and a &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;rollout
policy,&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt; pn, used in the Monte
Carlo simulations, there is a &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;supervised learning
policy&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt; (SL policy), p&lt;sub&gt;a&lt;/sub&gt;,
a &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
font-weight:normal&#39;&gt;reinforcement learning policy&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span
lang=EN-US&gt; (RL policy), p&lt;sub&gt;p&lt;/sub&gt;, and a &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;state-value function,&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt; v^. These policies and value function were all
learned off-line before actual play. The SL policy is used in the expansion
phase of APV-MCTS iterations, the phase in which a node in the search tree is
selected as a promising node from which to explore further. In contrast to
basic MCTS, which expands the selected node by choosing an unexplored action
based on stored action-values, APV- MCTS chooses an action according to prior
probabilities supplied by the SL-policy. Both the rollout policy and the SL
policy were learned before play via supervised learning using large databases
of expert human moves. The RL policy was learned via self-play reinforcement
learning and was used to derive the state-value function &lt;/span&gt;&lt;/span&gt;&lt;span
class=43MingLiU3&gt;&lt;span style=&#39;font-size:5.5pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;\CE\C7&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;.Below we
explain how this was done.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.15pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;In contrast to basic MCTS, which evaluates the
expanded node solely on the basis of the return of the simulation initiated
from it, APV-MCTS evaluates the node in two ways: by this return of the
simulation, but also by the value function &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt2&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;v&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;: if s is the node selected for expansion, its value
becomes&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:7.8pt;
margin-left:28.0pt;text-align:justify;text-justify:inter-ideograph;text-indent:
0cm;line-height:9.5pt;mso-line-height-rule:exactly;mso-list:l59 level1 lfo94;
tab-stops:36.9pt right 398.3pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal;mso-bidi-font-style:italic&#39;&gt;&lt;span
style=&#39;mso-list:Ignore&#39;&gt;V&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;(s) = &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;(1&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt; \A1\AA n)ve (s) + nG,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;(16.4)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;line-height:
9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=431&gt;&lt;span
lang=EN-US&gt;where &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;G&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span
lang=EN-US&gt; is the return of the simulation and n controls the mixing of the
values&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection390&gt;

&lt;p class=afffff6 style=&#39;margin-bottom:1.25pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:9.5pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=affffe&gt;&lt;span lang=EN-US&gt;luation methods.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=affffe&gt;&lt;span lang=EN-US&gt;he rollout policy,
the SL policy, the RL policy, and the Ns came into play. These policies were
learned by deep tively called the &lt;/span&gt;&lt;/span&gt;&lt;span class=afffff1&gt;&lt;span
lang=EN-US&gt;rollout policy network,&lt;/span&gt;&lt;/span&gt;&lt;span class=affffe&gt;&lt;span
lang=EN-US&gt; the &lt;/span&gt;&lt;/span&gt;&lt;span class=afffff1&gt;&lt;span lang=EN-US&gt;SL policy
ork&lt;/span&gt;&lt;/span&gt;&lt;span class=affffe&gt;&lt;span lang=EN-US&gt;, and the &lt;/span&gt;&lt;/span&gt;&lt;span
class=afffff1&gt;&lt;span lang=EN-US&gt;value network&lt;/span&gt;&lt;/span&gt;&lt;span class=affffe&gt;&lt;span
lang=EN-US&gt;. Figure 16.12 illustrates the works in what the DeepMind team
called the \A1\B0AlphaGo ained before any live game play took place and their ighout
AlphaGo\A1\AFs live play.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff6 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;
background:transparent&#39;&gt;&lt;span class=affffe&gt;&lt;span lang=EN-US&gt;-play process was
to train the SL policy network. This \A1\AFs deep convolutional network described in
Section 16.6 pt that it had 13 layers with the final layer consisting of a n
the 19 x 19 board. The network\A1\AFs input was a 19 x 19 ch point on the Go board
was represented by the values ed features. For example, for each point, one
feature upied by one of AlphaGo\A1\AFs stones, one of its opponent\A1\AFs thus providing
the \A1\B0raw\A1\B1 representation of the board es were based on the rules of Go, such as
the number empty, the number of opponent stones that would be here, the number
of turns since a stone was placed there, at the design team considered to be
important. The SL rvised learning to predict moves contained in a data base
noves. Its output, which was a probability distribution the SL policy that
supplied the action probabilities in -MCTS. Training took approximately 3 weeks
using a&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;
mso-bidi-font-family:Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection391&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:35.35pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection392&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;distributed implementation of stochastic gradient
ascent on 50 processors. The SL network achieved 57% accuracy, compared to best
accuracy achieved by other groups at the time of publication of 44.4%.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;The goal for the rollout policy
network was that it should select actions quickly while still being reasonably
accurate. In principle, the SL policy could have served as the rollout policy,
but the forward propagation through the SL policy network took too much time
for this network to be used in rollout simulations, a great many of which had
to be carried out for each move decision during live play. For this reason, the
rollout policy network was less complex than the SL policy network, and its
input features could be computed more quickly than the features used for the SL
policy network. This network was trained by supervised learning on a corpus of &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia2&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;8 &lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;million human moves. The resulting rollout policy
network allowed approximately &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;1,000&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt; complete game simulations per second to be run on
each of the processing threads that AlphaGo used.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Next, the value function, ,
needed by APV-MCTS had to be created. Ideally, would be the optimal state-value
function. It might have been possible to approx&amp;shy;imate the optimal value
function along the lines of TD-Gammon described above: self-play with nonlinear
TD(A) coupled to a deep convolutional ANN. But the Deep- Mind team took a
different approach that held more promise for a game as complex as Go. They
divided the process into two stages. In the first stage, they created the best
policy they could by training a deep convolutional network by means of a
policy-gradient reinforcement learning algorithm. This resulted in the RL
policy network implementing the RL policy p&lt;sub&gt;p&lt;/sub&gt;.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;The RL policy network had the
same architecture as the SL policy network and was initialized with the final
weights of the SL policy network that were learned via supervised learning.
Reinforcement learning was then used to improve upon the SL policy. Learning
was by means of simulated games between the network\A1\AFs current policy and
opponents using policies randomly selected from policies produced by earlier
iterations of the learning algorithm. Playing against a randomly selected
collection of opponents prevented overfitting to the current policy. The reward
signal was +1 if the current policy won, \A1\AA1 if it lost, and zero otherwise.
These games directly pitted two policies against one another without involving
any search. By simulating many games in parallel on 50 processors, the DeepMind
team trained the RL policy network on a million games in a single day. In
testing the final RL policy Pp, they found that it won more than 80% of games
played against the SL policy , and it won 85% of games played against a Go
program using Monte Carlo search that simulated &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia2&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;100,000&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt; games per move.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Finally, the value function v^
was learned by the value network: a deep convolu&amp;shy;tional ANN whose structure was
like that of the SL and RL policy networks except that its single output unit
produced state values (the right-most network in Fig&amp;shy;ure 16.12) instead of
probability distributions over legal actions. The value network was trained by
Monte Carlo policy evaluation on data obtained from a large number of simulated
games in which each player used the RL policy p&lt;sub&gt;p&lt;/sub&gt;. The team found
that the values produced by this network were more accurate than values
produced by multiple simulations using the rollout policy pn, and in fact
compared well with val&amp;shy;ues produced by simulations using the higher-performing
RL policy &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt2&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt;font-weight:normal&#39;&gt;pp&lt;/span&gt;&lt;/span&gt;&lt;span class=43MingLiU3&gt;&lt;span
style=&#39;font-size:5.5pt;mso-ansi-language:ZH-TW;font-weight:normal&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;even though they could be computed 15,000 times more
quickly.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;One may wonder why APV-MCTS used
the SL policy p&lt;sub&gt;a&lt;/sub&gt; instead of the better RL policy pp to select
actions in the expansion phase. These policies took the same amount of time to
compute since they used the same network architecture. The team actually found
that AlphaGo worked better against human opponents when APV-MCTS used as its SL
policy p&lt;sub&gt;a&lt;/sub&gt; instead of pp. They conjectured that the reason for this
was that the pp was tuned to respond to optimal moves rather than to the
broader set of moves characteristic of human play. Interestingly, the situation
was reversed for the value function, v^, used by APV-MCTS. They found that when
APV-MCTS used the value function derived from the RL policy, it performed
better than if it used the value function derived from the SL policy.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Several methods worked together
to produce AlphaGo\A1\AFs impressive playing skill. The DeepMind team evaluated
different versions of AlphaGo in order to asses the contributions made by these
various components. The parameter n in (16.4) controls the mixing of game state
evaluations produced by the value network and by rollouts. With n = 0, AlphaGo
used just the value network without rollouts, and with n = 1, evaluation relied
just on rollouts. They found that AlphaGo using just the value network played
better than the rollout-only AlphaGo, and in fact played better than the
strongest of all other Go programs. The best play resulted from setting n =
0.5, indicating that combining the value network with rollouts was particularly
important to AlphaGo\A1\AFs success. These evaluation methods complemented one
another: the value network evaluated the high-performance policy pp that was
too slow to be used in live play, while rollouts using the weaker but much
faster rollout policy p^ were able to add precision to the value network\A1\AFs
evaluations for specific states that occurred during games.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:30.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;Overall, AlphaGo\A1\AFs remarkable success helped fuel a
new round of enthusiasm for the promise of artificial intelligence,
specifically for systems combining reinforcement learning with deep ANNs, to
address problems in many other challenging domains.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=167 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l18 level1 lfo93;tab-stops:44.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark269&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;16.8&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Personalized Web Services&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;Personalizing web services such as the delivery of
news articles or advertisements is one approach to increasing users\A1\AF
satisfaction with a website or to increase the yield of a marketing campaign. A
policy can recommend content considered to be the best for each particular user
based on a profile of that user\A1\AFs interests and preferences inferred from their
history of online activity. This is a natural domain for machine learning, and
in particular, for reinforcement learning. A reinforcement learning system can
improve a recommendation policy by making adjustments in response to user
feedback. One way to obtain user feedback is by means of website satisfaction
surveys, but for acquiring feedback in real time it is common to monitor user
clicks as indicators of interest in a link.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;A method long used in marketing
called &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;
font-weight:normal&#39;&gt;A/B testing&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;
is a simple type of reinforce&amp;shy;ment learning used to decide which of two
versions, A or B, of a website users prefer. Because it is non-associative,
like a two-armed bandit problem, this approach does not personalize content
delivery. Adding context consisting of features describing individual users and
the content to be delivered allows personalizing service. This has been
formalized as a contextual bandit problem (or an associative reinforcement
learning problem, Section 2.9) with the objective of maximizing the total
number of user clicks. Li, Chu, Langford, and Schapire (2010) applied a
contextual bandit al&amp;shy;gorithm to the problem of personalizing the Yahoo! Front
Page Today webpage (one of the most visited pages on the internet at the time
of their research) by selecting the news story to feature. Their objective was
to maximize the &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;click-through rate &lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;(CTR), which is the ratio of the total number of
clicks all users make on a webpage to the total number of visits to the page.
Their contextual bandit algorithm improved over a standard non-associative
bandit algorithm by 12.5%.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Theocharous, Thomas, and
Ghavamzadeh (2015) argued that better results are possible by formulating
personalized recommendation as a Markov decision problem (MDP) with the
objective of maximizing the total number of clicks users make over repeated
visits to a website. Policies derived from the contextual bandit formulation
are greedy in the sense that they do not take long-term effects of actions into
account. These policies effectively treat each visit to a website as if it were
made by a new visitor uniformly sampled from the population of the website\A1\AFs
visitors. By not using the fact that many users repeatedly visit the same
websites, greedy policies do not take advantage of possibilities provided by
long-term interactions with individual users.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;As an example of how a marketing
strategy might take advantage of long-term user interaction, Theocharous et al.
contrasted a greedy policy with a longer-term policy for displaying ads for
buying a product, say a car. The ad displayed by the greedy policy might offer
a discount if the user buys the car immediately. A user either takes the offer
or leaves the website, and if they ever return to the site, they would likely
see the same offer. A longer-term policy, on the other hand, can transition the
user \A1\B0down a sales funnel\A1\B1 before presenting the final deal. It might start by describing
the availability of favorable financing terms, then praise an excellent service
department, and then, on the next visit, offer the final discount. This type of
policy can result in more clicks by a user over repeated visits to the site,
and if the policy is suitably designed, more eventual sales.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Working at Adobe Systems
Incorporated, Theocharous et al. conducted experi&amp;shy;ments to see if policies
designed to maximize clicks over the long term could in fact improve over
short-term greedy policies. The Adobe Marketing Cloud, a set of tools that many
companies use to to run digital marketing campaigns, provides infrastruc&amp;shy;ture
for automating user-targed advertising and fund-raising campaigns. Actually
deploying novel policies using these tools entails significant risk because a
new policy may end up performing poorly. For this reason, the research team
needed to assess what a policy\A1\AFs performance would be if it were to be actually
deployed, but to do so on the basis of data collected under the execution of
other policies. A critical aspect of this research, then, was off-policy
evaluation. Further, the team wanted to do this with high confidence to reduce
the risk of deploying a new policy. Although high confidence off-policy
evaluation was a central component of this research (see also Thomas, 2015;
Thomas, Theocharous, and Ghavamzadeh, 2015), here we focus only on the
algorithms and their results.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Theocharous et al. compared the
results of two algorithms for learning ad recom&amp;shy;mendation policies. The first
algorithm, which they called &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt2&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;greedy optimization,&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt; had the goal of maximizing only the probability of
immediate clicks. As in the standard contextual bandit formulation, this
algorithm did not take the long-term effects of recommendations into account.
The other algorithm, a reinforcement learning algo&amp;shy;rithm based on an MDP
formulation, aimed at improving the number of clicks users made over multiple
visits to a website. They called this latter algorithm &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;life-time
value&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt; (LTV) optimization. Both
algorithms faced challenging problems because the reward signal in this domain
is very sparse since users usually do not click on ads, and user clicking is
very random so that returns have high variance.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Data sets from the banking
industry were used for training and testing these algo&amp;shy;rithms. The data sets
consisted of many complete trajectories of customer interaction with a bank\A1\AFs
website that showed each customer one out of a collection of possible offers.
If a customer clicked, the reward was 1, and otherwise it was 0. One data set
contained approximately &lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;200,000&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt; interactions from a month of a bank\A1\AFs campaign that
randomly offered one of 7 offers. The other data set from another bank\A1\AFs cam&amp;shy;paign
contained 4,000,000 interactions involving &lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia2&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt; possible offers. All interactions included customer
features such as the time since the customer\A1\AFs last visit to the website, the
number of their visits so far, the last time the customer clicked, geo&amp;shy;graphic
location, one of a collection of interests, and features giving demographic
information.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Greedy optimization was based on
a mapping estimating the probability of a click as a function of user features.
The mapping was learned via supervised learning from one of the data sets by
means of a random forest (RF) algorithm (Breiman, 2001). RF algorithms have
been widely used for large-scale applications in industry because they are
effective predictive tools that tend not to overfit and are relatively
insensitive to outliers and noise. Theocharous et al. then used the mapping to
define an e-greedy policy that selected with probability 1-e the offer
predicted by the RF algorithm to have the highest probability of producing a
click, and otherwise selected from the other offers uniformly at random.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;LTV optimization used a
batch-mode reinforcement learning algorithm called &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;fitted
Q iteration&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt; (FQI). It is a
variant of &lt;/span&gt;&lt;/span&gt;&lt;span class=438pt2&gt;&lt;span lang=EN-US style=&#39;font-size:
8.0pt;font-weight:normal&#39;&gt;fitted value iteration&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span
lang=EN-US&gt; (Gordon, 1999) adapted to Q-learning. Batch mode means that the
entire data set for learning is available from the start, as opposed to the
on-line mode of the algorithms we focus on in this book in which data are
acquired sequentially while the learning algorithm executes. Batch-mode
reinforcement learning algorithms are sometimes necessary when on&amp;shy;line learning
is not practical, and they can use any batch-mode supervised learning
regression algorithm, including algorithms known to scale well to high-dimensional
spaces. The convergence of FQI depends on properties of the function
approximation &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection393&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;algorithm (Gordon, 1999). For
their application to LTV optimi et al. used the same RF algorithm they used for
the greedy opt Since in this case FQI convergence is not monotonic, Theochar of
the best FQI policy by off-policy evaluation using a validati( final policy for
testing the LTV approach was the e-greedy poli( policy produced by FQI with the
initial action-value function produced by the RF for the greedy optimization
approach.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.55pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;To measure the performance of the
policies produced by the proaches, Theocharous et al. used the CTR metric and a
metric metric. These metrics are similar, except that the LTV metric cr between
individual website visitors:&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
174.0pt;line-height:9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;Total # of Clicks&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 align=center style=&#39;margin-left:2.0pt;text-align:center;
line-height:9.0pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;CTR&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:43.0pt;margin-bottom:0cm;
margin-left:175.0pt;margin-bottom:.0001pt;line-height:18.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Total &lt;/span&gt;&lt;/span&gt;&lt;span
class=438pt2&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;font-weight:normal&#39;&gt;&amp;#8226;&lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt; of Visits&lt;/span&gt;&lt;/span&gt;&lt;span class=43Georgia2&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;5&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=43Georgia2&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;Total # of Clicks&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:135.0pt;line-height:9.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;LTV&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:12.25pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;text-indent:
174.0pt;line-height:13.8pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;Total # of Visitors Figure 16.13 illustrates how
these metrics differ. Each circle re to the site; black circles are visits at
which the user clicks. Each by a particular user. By not distinguishing between
visitors, sequences is 0.35, whereas the LTV is 1.5. Because LTV is larg extent
that individual users revisit the site&lt;/span&gt;\A3\AC&lt;span lang=EN-US&gt;it is an
indicator policy is in encouraging users to engage in extended interaction&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=1051 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:88.0pt;margin-bottom:.0001pt;line-height:6.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=1050&gt;&lt;span lang=EN-US&gt;Visit 1 Visit
2 Visit 3 Visit 4 Visit 5&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:6.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;div class=WordSection394&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:21.55pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection395&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.7pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
11.9pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=431&gt;&lt;span
lang=EN-US&gt;Figure 16.13: Click through rate (CTR) versus life-time value (LTV).
a user visit; black circles are visits at which the user clicks. Adapted al.
(2015) permission pending.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.55pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Testing the policies produced by
the greedy and LTV appr ing a high confidence off-policy evaluation method on a
test of real-world interactions with a bank website served by a ran pected,
results showed that greedy optimization performed b the CTR metric, while LTV
optimization performed best as m metric. Furthermore&lt;/span&gt;&lt;/span&gt;&lt;span
class=43MingLiU3&gt;&lt;span style=&#39;font-size:5.5pt;mso-ansi-language:ZH-TW;
font-weight:normal&#39;&gt;һ&lt;/span&gt;&lt;/span&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;although we
have omitted its details\A1\AA off-policy evaluation method provided probabilistic
guarantees mization method would, with high probability, produce policie
policies currently deployed. Assured by these probabilistic gu nounced in 2016
that the new LTV algorithm would be a standa&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:always;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection396&gt;

&lt;p class=436 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:30.35pt;
margin-left:0cm;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=431&gt;&lt;span
lang=EN-US&gt;Adobe Marketing Cloud so that a retailer could issue a sequence of
offers following a policy likely to yield higher return than a policy that is
insensitive to long-term results.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=167 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:12.55pt;
margin-left:0cm;text-indent:0cm;line-height:13.0pt;mso-line-height-rule:exactly;
mso-list:l18 level1 lfo93;tab-stops:44.15pt;background:transparent&#39;&gt;&lt;a
name=bookmark270&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;16.9&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span lang=EN-US&gt;Thermal Soaring&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;Birds and gliders take advantage of upward air
currents\A1\AAthermals\A1\AAto gain altitude in order maintain flight while expending
little, or no, energy. Thermal soaring, as this behavior is called, is a
complex skill requiring responding to subtle environmental cues to increase
altitude by exploiting a rising column of air for as long as possi&amp;shy;ble. Reddy,
Celani, Sejnowski, and Vergassola (2016) used reinforcement learning to
investigate thermal soaring policies that are effective in the strong
atmospheric tur&amp;shy;bulence usually accompanying rising air currents. Their primary
goal was to provide insight into the cues birds sense and how they use them to
achieve their impressive thermal soaring performance, but the results also
contribute to technology relevant to autonomous gliders. Reinforcement learning
had previously been applied to the problem of navigating efficiently to the
vicinity of a thermal updraft (Woodbury, Dunn, and Valasek, 2014) but not to
the more challenging problem of soaring within the turbulence of the updraft
itself.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Reddy et al. modeled the soaring
problem as an MDP. The agent interacted with a detailed model of a glider
flying in turbulent air. They devoted significant effort toward making the
model generate realistic thermal soaring conditions, including investigating
several different approaches to atmospheric modeling. For the learn&amp;shy;ing
experiments, air flow in a three-dimensional box with one kilometer sides, one
of which was at ground level, was modeled by a sophisticated physics-based set
of partial differential equations involving air velocity, temperature, and
pressure. Intro&amp;shy;ducing small random perturbations into the numerical simulation
caused the model to produce analogs of thermal updrafts and accompanying
turbulence (Figure 16.14 Left) Glider flight was modeled by aerodynamic
equations involving velocity, lift, drag, and other factors governing powerless
flight of a fixed-wing aircraft. Maneu&amp;shy;vering the glider involved changing its
angle of attack (the angle between the glider\A1\AFs wing and the direction of air
flow) and its bank angle (Figure 16.14 Right).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;The interface between the agent
and the environment required defining the agent\A1\AFs actions, the state
information the agent receives from the environment, and the reward signal. By
experimenting with various possibilities, Reddy et al. decided that three
actions each for the angle of attack and the bank angle were enough for their
purposes: increment or decrement the current bank angle and angle of attack by
5\A1\E3 and 2.5\A1\E3, respectively, or leave them unchanged. This resulted in 3&lt;/span&gt;&lt;/span&gt;&lt;span
class=43Georgia2&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;font-weight:normal&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt; possible actions. The bank angle was bounded to
remain between -15\A1\E3 and +15\A1\E3.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Because a goal of their study was
to try to determine what minimal set of sensory cues are necessary for
effective soaring, both to shed light on the cues birds might use for soaring
and to minimize the sensing complexity required for automated glider soaring,
the authors tried various sets of signals as input to the reinforcement
learning&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;div style=&#39;mso-element:frame;mso-element-frame-height:153.35pt;mso-element-wrap:
no-wrap-beside;mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:
column;mso-element-left:center;mso-element-top:.05pt&#39;&gt;

&lt;table cellspacing=0 cellpadding=0 hspace=0 vspace=0 height=204 align=center&gt;
 &lt;tr&gt;
  &lt;td valign=top align=left height=204 style=&#39;padding-top:0cm;padding-right:
  0cm;padding-bottom:0cm;padding-left:0cm&#39;&gt;
  &lt;p class=51e style=&#39;line-height:6.0pt;mso-line-height-rule:exactly;
  tab-stops:right 77.75pt 84.0pt 92.4pt;background:transparent;mso-element:
  frame;mso-element-frame-height:153.35pt;mso-element-wrap:no-wrap-beside;
  mso-element-anchor-vertical:paragraph;mso-element-anchor-horizontal:column;
  mso-element-left:center;mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US&gt;z&lt;span
  style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Lift&lt;span
  style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;L&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;,&lt;/span&gt;&lt;/p&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-align:center;mso-element:frame;
  mso-element-frame-height:153.35pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:
  paragraph;mso-element-anchor-horizontal:column;mso-element-left:center;
  mso-element-top:.05pt&#39;&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;p class=afffff8 style=&#39;background:transparent;mso-element:frame;mso-element-frame-height:
  153.35pt;mso-element-wrap:no-wrap-beside;mso-element-anchor-vertical:paragraph;
  mso-element-anchor-horizontal:column;mso-element-left:center;mso-element-top:
  .05pt&#39;&gt;&lt;span class=afffff3&gt;&lt;span lang=EN-US&gt;Figure 16.14: Thermal soaring
  model: Left: snapshot of the vertical velocity field of the simulated cube of
  air: in light (dark) grey is a region of large upward (downward) flow. Right:
  diagram of powerless flight showing bank angle &lt;/span&gt;&lt;/span&gt;&lt;span
  class=afffff4&gt;&lt;span lang=EN-US&gt;\i&lt;/span&gt;&lt;/span&gt;&lt;span class=afffff3&gt;&lt;span
  lang=EN-US&gt; and angle of attack &lt;/span&gt;&lt;/span&gt;&lt;span class=afffff4&gt;&lt;span
  lang=EN-US&gt;a.&lt;/span&gt;&lt;/span&gt;&lt;span class=afffff3&gt;&lt;span lang=EN-US&gt; Adapted with
  permission From PNAS vol. 113(22), p. E4879, 2016, Reddy, Celani, Sejnowski,
  and Vergassola, Learning to Soar in Turbulent Environments.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&amp;lt;![if !supportTextWrap]&amp;gt;&lt;br clear=ALL&gt;
&amp;lt;![endif]&amp;gt;&lt;/p&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-top:21.9pt;margin-right:2.0pt;margin-bottom:0cm;
margin-left:0cm;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;agent. They started by using state aggregation
(Chapter 9) of a four-dimensional state space with dimensions giving local
vertical wind speed, local vertical wind acceleration, torque depending on the
difference between the vertical wind velocities at the left and right wing
tips, and the local temperature. Each dimension was discretized into three
bins: positive high, negative high, and small. Results, described below, showed
that only two of these dimensions were critical for effective soaring behavior.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:2.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;The overall objective of thermal
soaring is to gain as much altitude as possible from each rising column of air.
Reddy et al. tried a straightforward reward signal that rewarded the agent at
the end of each episode based on the altitude gained over the episode, a large
negative reward signal if the glider touched the ground, and zero otherwise.
They found that learning was not successful with this reward signal for
episodes of realistic duration and that eligibility traces did not help. By
experimenting with various reward signals, they found that learning was best
with a reward signal that at each time step linearly combined the vertical wind
velocity and vertical wind acceleration observed on the previous time step.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:2.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Learning was by Sarsa with action
selection using softmax applied to action values normalized to the interval
[0,1]. The temperature parameter was initialized to 2.0 and incrementally
decreased to 0.2 during learning. The step-size and discount-rate parameters
were fixed at 0.1 and 0.98 respectively. Each learning episode took place with
the agent controlling simulated flight in an independently generated period of
simulated turbulent air currents. Each episode lasted 2.5 minutes simulated
with a 1 second time step. Learning effectively converged after a few hundred
episodes. The left panel of Figure 16.15 shows a sample trajectory before
learning where the agent selects actions randomly. Starting at the top of the
volume shown, the glider\A1\AFs&lt;br clear=all style=&#39;page-break-before:always&#39;&gt;
trajectory is in the direction indicated by the arrow and quickly loses
altitude. Fig&amp;shy;ure 16.15\A1\AFs right panel is a trajectory after learning. The
glider starts at the same place (here appearing at the bottom of the volume)
and gains altitude by spiraling within the rising column of air. Although Reddy
at al. found that performance varied widely over different simulated periods of
air flow, the number of times the glider touched the ground consistently
decreased to nearly zero as learning progressed.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection397&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:18.0pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;line-height:35.85pt;mso-line-height-rule:exactly&#39;&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span lang=EN-US style=&#39;font-size:1.0pt;font-family:&#34;Courier New&#34;;mso-fareast-font-family:
&#34;Courier New&#34;;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;
mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;br style=&#39;mso-ignore:vglayout&#39; clear=ALL&gt;&lt;/p&gt;

&lt;div class=WordSection398&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;After experimenting with
different sets of features available to the learning agent, it turned out that
the combination of just vertical wind acceleration and torques worked best. The
authors conjectured that because these features give information about the
gradient of vertical wind velocity in two different directions, they allow the
controller to select between turning by changing the bank angle or continuing
along the same course by leaving the bank angle alone. This allows the glider
to stay within a rising column of air. Vertical wind velocity is indicative of
the strength of the thermal but does not help in staying within the flow. They
found that sensitivity to temperature was of little help. They also found that
controlling the angle of attack is not helpful in staying within a particular
thermal, being useful instead for traveling between thermals when covering
large distances, as in cross-country gliding and bird migration.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:inter-ideograph;
text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=431&gt;&lt;span lang=EN-US&gt;Since soaring in different levels
of turbulence requires different policies, training was done in conditions
ranging from weak to strong turbulence. In strong turbulence the rapidly changing
wind and glider velocities allowed less time for the controller to react. This
reduced the amount of control possible compared to what was possible for
maneuvering when fluctuations were weak. Reddy at al. examined the policies&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;br clear=all style=&#39;mso-special-character:line-break;page-break-before:
always&#39;&gt;
&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;line-height:
13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span class=431&gt;&lt;span
lang=EN-US&gt;Sarsa learned under these different conditions. Common to policies
learned in all regimes were these features: when sensing negative wind
acceleration, bank sharply in the direction of the wing with the higher lift;
when sensing large positive wind acceleration and no torque, do nothing.
However, different levels of turbulence led to policy differences. Policies
learned in strong turbulence were more conservative in that they preferred
small bank angles, whereas in weak turbulence, the best ac&amp;shy;tion was to turn as
much as possible by banking sharply. Systematic study of the bank angles
preferred by the policies learned under the different conditions led the
authors to suggest that by detecting when vertical wind acceleration crosses a
cer&amp;shy;tain threshold the controller can adjust its policy to cope with different
turbulence regimes.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;Reddy et al. also conducted experiments to
investigate the effect of the discount- rate parameter Y on the performance of
the learned policies. They found that the altitude gained in an episode increased
as Y increased, reaching a maximum for&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;margin-left:0cm;text-align:justify;text-justify:inter-ideograph;
text-indent:0cm;line-height:13.45pt;mso-line-height-rule:exactly;mso-list:l80 level1 lfo95;
tab-stops:9.85pt;background:transparent&#39;&gt;&lt;![if !supportLists]&gt;&lt;span lang=EN-US
style=&#39;font-weight:normal;mso-bidi-font-weight:bold&#39;&gt;&lt;span style=&#39;mso-list:
Ignore&#39;&gt;Y&lt;span style=&#39;font:7.0pt &#34;Times New Roman&#34;&#39;&gt;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;= .99, suggesting that effective thermal soaring
requires taking into account long&amp;shy;term effects of control decisions.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=436 style=&#39;text-align:justify;text-justify:inter-ideograph;text-indent:
11.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=431&gt;&lt;span lang=EN-US&gt;This computational study of thermal soaring
illustrates how reinforcement learning can further progress toward different
kinds of objectives. Learning policies having access to different sets of
environmental cues and control actions contributes to both the engineering
objective of designing autonomous gliders and the scientific objective of
improving understanding of the soaring skills of birds. In both cases,
hypotheses resulting from the learning experiments can be tested in the field
by instrumenting real gliders and by comparing predictions with observed bird
soaring behavior.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection399&gt;

&lt;p class=8a style=&#39;margin-bottom:29.1pt;line-height:19.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=89&gt;&lt;span lang=EN-US&gt;Chapter 17&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=932 style=&#39;margin-top:0cm;line-height:22.0pt;mso-line-height-rule:
exactly;mso-pagination:lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark271&gt;&lt;span lang=EN-US&gt;Frontiers&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:22.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection400&gt;

&lt;p class=991 style=&#39;text-align:justify;text-justify:inter-ideograph;line-height:
9.0pt;mso-line-height-rule:exactly;tab-stops:right 308.4pt 324.95pt 399.35pt;
background:transparent&#39;&gt;&lt;span class=999pt&gt;&lt;span lang=ZH-TW style=&#39;font-size:
9.0pt;font-style:normal&#39;&gt;478&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=990&gt;&lt;span lang=EN-US&gt;CHAPTER&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp; &lt;/span&gt;17.&lt;span
style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;FRONTIERS&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=932 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:38.45pt;
margin-left:0cm;line-height:22.0pt;mso-line-height-rule:exactly;mso-pagination:
lines-together;page-break-after:avoid;background:transparent&#39;&gt;&lt;a
name=bookmark272&gt;&lt;span lang=EN-US&gt;References&lt;/span&gt;&lt;/a&gt;&lt;/p&gt;

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&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:0cm;
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&lt;p class=afffff6 style=&#39;margin-top:0cm;margin-right:2.0pt;margin-bottom:0cm;
margin-left:18.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
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exactly;tab-stops:308.5pt;background:transparent&#39;&gt;&lt;span class=affffe&gt;&lt;span
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style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;Probability
problem&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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inter-ideograph;text-indent:0cm;line-height:12.0pt;mso-line-height-rule:exactly;
tab-stops:308.5pt;background:transparent&#39;&gt;&lt;span class=affffe&gt;&lt;span lang=EN-US&gt;of
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class=affffe&gt;&lt;span lang=EN-US&gt; (9):1307-1323.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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lang=EN-US&gt;7(6):464-476.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

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&lt;/div&gt;

&lt;p&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;&lt;br clear=all style=&#39;page-break-before:auto;mso-break-type:section-break&#39;&gt;
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div class=WordSection403&gt;

&lt;p class=afffff5 style=&#39;text-align:justify;text-justify:inter-ideograph;
line-height:11.15pt;mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;span
class=a5&gt;&lt;span lang=EN-US&gt;iht=IHT(4096) and tiles(iht, 8, [8*x/(0.5+1.2),
8*xdot/(0.07+0.07)], A) to get the indices of the ones in the feature vector
for state (x, xdot) and action A.&lt;/span&gt;&lt;/span&gt;&lt;span class=a5&gt;&lt;span lang=EN-US
style=&#39;font-family:\CB\CE\CC\E5;mso-ascii-theme-font:minor-fareast;mso-fareast-theme-font:
minor-fareast;mso-hansi-theme-font:minor-fareast&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote-list&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;br clear=all&gt;

&lt;hr align=left size=1 width=&#34;33%&#34;&gt;

&lt;![endif]&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn1&gt;

&lt;p class=afffff5 style=&#39;margin-left:13.0pt;background:transparent&#39;&gt;&lt;a
style=&#39;mso-footnote-id:ftn1&#39; href=&#34;#_ftnref1&#34; name=&#34;_ftn1&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;font-family:&#34;Century Schoolbook&#34;,&#34;serif&#34;;
mso-fareast-font-family:&#34;Century Schoolbook&#34;;mso-bidi-font-family:&#34;Century Schoolbook&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[1]&lt;/span&gt;&lt;/sup&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;span lang=EN-US&gt;The
notation (a, b] as a set denotes the real interval between &lt;span class=a0&gt;a&lt;/span&gt;
and &lt;span class=a0&gt;b&lt;/span&gt; including &lt;span class=a0&gt;b&lt;/span&gt; but not including&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn2&gt;

&lt;p class=afffff5 style=&#39;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn2&#39;
href=&#34;#_ftnref2&#34; name=&#34;_ftn2&#34; title=&#34;&#34;&gt;&lt;/a&gt;&lt;span class=a0&gt;&lt;span lang=EN-US&gt;a.&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; Thus, here we are saying that 0 &amp;lt; &lt;span class=a0&gt;a&lt;/span&gt; &amp;lt;
1.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn3&gt;

&lt;p class=afffff5 style=&#39;margin-left:13.0pt;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn3&#39; href=&#34;#_ftnref3&#34;
name=&#34;_ftn3&#34; title=&#34;&#34;&gt;&lt;span class=a1&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=a1&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[3]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a1&gt;&lt;span lang=EN-US&gt;Associative search tasks are often now termed &lt;/span&gt;&lt;/span&gt;&lt;span
class=a2&gt;&lt;span lang=EN-US&gt;contextual bandits&lt;/span&gt;&lt;/span&gt;&lt;span class=a1&gt;&lt;span
lang=EN-US&gt; in the literature.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn4&gt;

&lt;p class=afffff5 align=right style=&#39;margin-top:0cm;margin-right:5.0pt;
margin-bottom:0cm;margin-left:1.0pt;margin-bottom:.0001pt;text-align:right;
background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn4&#39; href=&#34;#_ftnref4&#34;
name=&#34;_ftn4&#34; title=&#34;&#34;&gt;&lt;span class=a1&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=a1&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[4]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a1&gt;&lt;span lang=EN-US&gt;We use the terms &lt;/span&gt;&lt;/span&gt;&lt;span class=a2&gt;&lt;span
lang=EN-US&gt;agent, environment,&lt;/span&gt;&lt;/span&gt;&lt;span class=a1&gt;&lt;span lang=EN-US&gt;
and &lt;/span&gt;&lt;/span&gt;&lt;span class=a2&gt;&lt;span lang=EN-US&gt;action&lt;/span&gt;&lt;/span&gt;&lt;span
class=a1&gt;&lt;span lang=EN-US&gt; instead of the engineers\A1\AF terms &lt;/span&gt;&lt;/span&gt;&lt;span
class=a2&gt;&lt;span lang=EN-US&gt;controller, controlled system&lt;/span&gt;&lt;/span&gt;&lt;span
class=a1&gt;&lt;span lang=EN-US&gt; (or &lt;/span&gt;&lt;/span&gt;&lt;span class=a2&gt;&lt;span lang=EN-US&gt;plant&lt;/span&gt;&lt;/span&gt;&lt;span
class=a1&gt;&lt;span lang=EN-US&gt;), and &lt;/span&gt;&lt;/span&gt;&lt;span class=a2&gt;&lt;span lang=EN-US&gt;control
signal&lt;/span&gt;&lt;/span&gt;&lt;span class=a1&gt;&lt;span lang=EN-US&gt; because they are
meaningful to a wider audience.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn5&gt;

&lt;p class=2f7 style=&#39;margin-right:1.0pt;text-indent:13.0pt;background:transparent&#39;&gt;&lt;a
style=&#39;mso-footnote-id:ftn5&#39; href=&#34;#_ftnref5&#34; name=&#34;_ftn5&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;[5]&lt;/span&gt;&lt;/sup&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;span
lang=EN-US&gt;We restrict attention &lt;/span&gt;&lt;span class=2CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;to&lt;/span&gt;&lt;/span&gt;&lt;span
class=2CenturySchoolbook0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;discrete time &lt;/span&gt;&lt;span class=2CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;to&lt;/span&gt;&lt;/span&gt;&lt;span
class=2CenturySchoolbook0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;keep things as simple as possible, even though many of the ideas can
be extended to the continuous-time case (e.g., see Bertsekas and Tsitsiklis,
1996; Werbos, 1992; Doya, 1996).&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn6&gt;

&lt;p class=2f7 style=&#39;margin-right:1.0pt;text-indent:13.0pt;background:transparent&#39;&gt;&lt;a
style=&#39;mso-footnote-id:ftn6&#39; href=&#34;#_ftnref6&#34; name=&#34;_ftn6&#34; title=&#34;&#34;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt;font-family:&#34;Batang&#34;,&#34;serif&#34;;mso-bidi-font-family:
Batang;color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;
mso-bidi-language:AR-SA&#39;&gt;[6]&lt;/span&gt;&lt;/sup&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/a&gt;&lt;span
lang=EN-US&gt;We use &lt;/span&gt;&lt;span class=2CenturySchoolbook&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt&#39;&gt;Rt+i&lt;/span&gt;&lt;/span&gt;&lt;span class=2CenturySchoolbook0&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;instead of &lt;/span&gt;&lt;span
class=2CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;Rt&lt;/span&gt;&lt;/span&gt;&lt;span
class=2CenturySchoolbook0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;to denote the reward due to &lt;/span&gt;&lt;span class=2CenturySchoolbook&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;At&lt;/span&gt;&lt;/span&gt;&lt;span
class=2CenturySchoolbook0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;because it emphasizes that the next reward and next state, Rt+i and &lt;/span&gt;&lt;span
class=2CenturySchoolbook&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt;St+i,&lt;/span&gt;&lt;/span&gt;&lt;span
class=2CenturySchoolbook0&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;are jointly determined. Unfortunately, both conventions are widely
used in the literature.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn7&gt;

&lt;p class=afffff5 style=&#39;margin-right:1.0pt;text-indent:12.0pt;background:transparent&#39;&gt;&lt;a
style=&#39;mso-footnote-id:ftn7&#39; href=&#34;#_ftnref7&#34; name=&#34;_ftn7&#34; title=&#34;&#34;&gt;&lt;span
class=a1&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=a1&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[7]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a1&gt;&lt;span lang=EN-US&gt;Better places for imparting this kind of prior
knowledge are the initial policy or value function, or in influences on these.
See Lin (1992), Maclin and Shavlik (1994), and Clouse (1996).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn8&gt;

&lt;p class=afffff5 style=&#39;margin-left:13.0pt;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn8&#39; href=&#34;#_ftnref8&#34;
name=&#34;_ftn8&#34; title=&#34;&#34;&gt;&lt;span class=a1&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=a1&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[8]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a1&gt;&lt;span lang=EN-US&gt;Episodes are sometimes called \A1\B0trials\A1\B1 in the
literature.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn9&gt;

&lt;p class=afffff5 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:13.0pt;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn9&#39;
href=&#34;#_ftnref9&#34; name=&#34;_ftn9&#34; title=&#34;&#34;&gt;&lt;span class=a1&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=a1&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[9]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a1&gt;&lt;span lang=EN-US&gt;This algorithm has a subtle bug, in that it may never
terminate if the policy continually switches between two or more policies that
are equally good. The bug can be fixed by adding additional flags, but it makes
the pseudocode so ugly that it is not worth it.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f7 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:6.0pt;
margin-left:1.0pt;text-indent:11.0pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Policy iteration often
converges in surprisingly few iterations. This is illustrated by the example in
Figure 4.1. The bottom-left diagram shows the value function for the
equiprobable random policy, and the bottom-right diagram shows a greedy policy
for this value function. The policy improvement theorem assures us that these
policies are better than the original random policy. In this case, however,
these policies are not just better, but optimal, proceeding to the terminal states
in the minimum number of steps. In this example, policy iteration would find
the optimal policy after just one iteration.&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f7 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;Example 4.2: Jack\A1\AFs Car Rental
Jack manages two locations for a nationwide car rental company. Each day, some
number of customers arrive at each location to rent cars. If Jack has a car
available, he rents it out and is credited $10 by the national company. If he
is out of cars at that location, then the business is lost. Cars become
available for renting the day after they are returned. To help ensure that cars
are available where they are needed, Jack can move them between the two
locations overnight, at a cost of $2 per car moved. We assume that the number
of cars requested and returned at each location are Poisson random variables,
meaning that the probability that the number is &lt;span class=20&gt;n&lt;/span&gt; is &lt;/span&gt;&lt;span
class=2MingLiU&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;\B1\B8&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;e&lt;sup&gt;-A&lt;/sup&gt;, where &lt;/span&gt;&lt;span class=2MingLiU0&gt;&lt;span
style=&#39;font-size:8.5pt;mso-ansi-language:ZH-TW&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;is the expected
number. Suppose &lt;/span&gt;&lt;span class=2MingLiU0&gt;&lt;span style=&#39;font-size:8.5pt;
mso-ansi-language:ZH-TW&#39;&gt;\C8\EB&lt;/span&gt;&lt;/span&gt;&lt;span style=&#39;mso-ansi-language:ZH-TW&#39;&gt; &lt;/span&gt;&lt;span
lang=EN-US&gt;is 3 and 4 for rental requests at the first and second locations and
3 and &lt;/span&gt;&lt;span class=29pt&gt;&lt;span lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;2 &lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt;for returns. To simplify the problem slightly, we assume that there
can be no more than &lt;/span&gt;&lt;span class=29pt&gt;&lt;span lang=EN-US style=&#39;font-size:
9.0pt&#39;&gt;20&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; cars at each location (any additional
cars are returned to the nationwide company, and thus disappear from the
problem) and a maximum of five cars can&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn10&gt;

&lt;p class=afffff5 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:13.0pt;line-height:11.05pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn10&#39; href=&#34;#_ftnref10&#34; name=&#34;_ftn10&#34;
title=&#34;&#34;&gt;&lt;span class=a3&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-special-character:
footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=a3&gt;&lt;sup&gt;&lt;span lang=EN-US
style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[10]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a3&gt;&lt;span lang=EN-US&gt;If this were a control problem with the objective of
minimizing travel time, then we would of course make the rewards the &lt;/span&gt;&lt;/span&gt;&lt;span
class=a4&gt;&lt;span lang=EN-US&gt;negative&lt;/span&gt;&lt;/span&gt;&lt;span class=a3&gt;&lt;span
lang=EN-US&gt; of the elapsed time. But since we are concerned here only with
prediction (policy evaluation), we can keep things simple by using positive
numbers.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn11&gt;

&lt;p class=3c style=&#39;line-height:7.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn11&#39; href=&#34;#_ftnref11&#34; name=&#34;_ftn11&#34;
title=&#34;&#34;&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
lang=EN-US style=&#39;font-size:7.0pt;font-family:&#34;Arial Unicode MS&#34;,&#34;sans-serif&#34;;
color:black;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[11]&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;span lang=EN-US&gt; -step Sarsa&lt;/span&gt;&lt;/p&gt;

&lt;p class=3c style=&#39;line-height:7.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;aka Sarsa(0) 2-step Sarsa 3-step Sarsa&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f7 style=&#39;margin-top:0cm;margin-right:6.0pt;margin-bottom:3.0pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;Pseudocode is shown in the box below, and an
example of why it can speed up learning compared to one-step methods is given
in Figure 7.4.&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f7 style=&#39;margin-top:0cm;margin-right:6.0pt;margin-bottom:13.55pt;
margin-left:1.0pt;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;What about Expected Sarsa? The backup diagram for
the n-step version of Ex&amp;shy;pected Sarsa is shown on the far right in Figure 7.3.
It consists of a linear string of sampled actions and states, just as in n-step
Sarsa, except that its last element is a branch over all action possibilities
weighted, as always, by their probability under n. This algorithm can be
described by the same equation as n-step Sarsa (above) except with the n-step
return redefined as&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f7 style=&#39;margin-left:28.0pt;line-height:11.5pt;mso-line-height-rule:
exactly;tab-stops:right 335.2pt 401.9pt;background:transparent&#39;&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;G&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t:t+n = &lt;sup&gt;R&lt;/sup&gt;t+i + &lt;/span&gt;&lt;span
lang=ZH-TW style=&#39;mso-ansi-language:ZH-TW&#39;&gt;\A1\AD&lt;/span&gt;&lt;span lang=EN-US&gt;+ &lt;sup&gt;Yn
iR&lt;/sup&gt;t+n +&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;/span&gt;&lt;span
class=2MingLiU1&gt;&lt;span style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;أ&lt;/span&gt;&lt;/span&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;(a|S&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN-US&gt;t+n&lt;sup&gt;)Q&lt;/sup&gt;t+n-i&lt;sup&gt;(S&lt;/sup&gt;t+n,
&lt;sup&gt;a)&lt;/sup&gt;,&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;&lt;sup&gt;(7&lt;/sup&gt;.&lt;sup&gt;6)&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=4e style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:10.7pt;
margin-left:212.0pt;line-height:8.0pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/p&gt;

&lt;p class=2f7 style=&#39;margin-left:1.0pt;line-height:9.5pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span lang=EN-US&gt;for all n and t such that n 1
and 0 t T n.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn12&gt;

&lt;p class=afffff5 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:13.0pt;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn12&#39;
href=&#34;#_ftnref12&#34; name=&#34;_ftn12&#34; title=&#34;&#34;&gt;&lt;span class=a3&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=a3&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[12]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a3&gt;&lt;span lang=EN-US&gt;The Dyna-Q+ agent was changed in two other ways as
well. First, actions that had never been tried before from a state were allowed
to be considered in the planning step (f) of the Tabular Dyna-Q algorithm in
the box above. Second, the initial model for such actions was that they would&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff5 style=&#39;background:transparent&#39;&gt;&lt;span class=a3&gt;&lt;span
lang=EN-US&gt;lead back to the same state with a reward of zero.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn13&gt;

&lt;p class=afffff5 style=&#39;margin-left:13.0pt;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn13&#39;
href=&#34;#_ftnref13&#34; name=&#34;_ftn13&#34; title=&#34;&#34;&gt;&lt;span class=a3&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=a3&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[13]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a3&gt;&lt;span lang=EN-US&gt;This policy might be stochastic because RTDP
continues to randomly select among all the&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn14&gt;

&lt;p class=afffff5 style=&#39;margin-left:13.0pt;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn14&#39;
href=&#34;#_ftnref14&#34; name=&#34;_ftn14&#34; title=&#34;&#34;&gt;&lt;span class=a3&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=a3&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[14]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a3&gt;&lt;span lang=EN-US&gt;There are interesting exceptions to this. See, e.g.,
Pearl (1984).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn15&gt;

&lt;p class=afffff5 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:13.0pt;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn15&#39;
href=&#34;#_ftnref15&#34; name=&#34;_ftn15&#34; title=&#34;&#34;&gt;&lt;span class=a3&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=a3&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[15]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a3&gt;&lt;span lang=EN-US&gt;In particular, in the episodic case with discounting &lt;/span&gt;&lt;/span&gt;&lt;span
class=Batang&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;(7&lt;/span&gt;&lt;/span&gt;&lt;span
class=a3&gt;&lt;span lang=EN-US&gt; &amp;lt; 1) it can be argued that we should be more
concerned about accurately valuing the states that occur early in the episode
than those that occur later. This can be expressed by altering the on-policy
distibution &lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiU&gt;&lt;span style=&#39;font-size:9.0pt;
mso-ansi-language:ZH-TW&#39;&gt;\DA\E0&lt;/span&gt;&lt;/span&gt;&lt;span class=a3&gt;&lt;span style=&#39;mso-ansi-language:
ZH-TW&#39;&gt; &lt;/span&gt;&lt;span lang=EN-US&gt;to include a factor of &lt;/span&gt;&lt;/span&gt;&lt;span
class=Batang&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span
class=a3&gt;&lt;span lang=EN-US&gt; in the second term of (9.2). Although this might be
more general, it would complicate the following&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=afffff5 style=&#39;background:transparent&#39;&gt;&lt;span class=a3&gt;&lt;span
lang=EN-US&gt;presentation of algorithms, and concerns a rare case, so we omit it
here.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn16&gt;

&lt;p class=afffff5 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:13.0pt;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn16&#39;
href=&#34;#_ftnref16&#34; name=&#34;_ftn16&#34; title=&#34;&#34;&gt;&lt;span class=a3&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=a3&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[16]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a3&gt;&lt;span lang=EN-US&gt;The &lt;sup&gt;T&lt;/sup&gt; denotes transpose, needed here to
turn the horizontal row vector in the text into a vertical column vector; in
this book vectors are generally taken to be column vectors unless explicitly
written out horizontally, as here, or transposed.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn17&gt;

&lt;p class=afffff5 style=&#39;text-indent:12.0pt;line-height:11.15pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn17&#39;
href=&#34;#_ftnref17&#34; name=&#34;_ftn17&#34; title=&#34;&#34;&gt;&lt;span class=a5&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=a5&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[17]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a5&gt;&lt;span lang=EN-US&gt;This data is actually from the \A1\B0semi-gradient
Sarsa(A)\A1\B1 algorithm that we will not meet until Chapter 12, but semi-gradient
Sarsa behaves similarly.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn18&gt;

&lt;p class=afffff5 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:13.0pt;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:
ftn18&#39; href=&#34;#_ftnref18&#34; name=&#34;_ftn18&#34; title=&#34;&#34;&gt;&lt;span class=a6&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=a6&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[18]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a6&gt;&lt;span lang=EN-US&gt;For state values there remains a small difference in
the treatment of the importance sampling ratio &lt;/span&gt;&lt;/span&gt;&lt;span class=a7&gt;&lt;span
lang=EN-US&gt;pt.&lt;/span&gt;&lt;/span&gt;&lt;span class=a6&gt;&lt;span lang=EN-US&gt; In the analagous action-value
case (which is the most important case for control algorithms), the residual
gradient algorithm would reduce exactly to the naive version.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn19&gt;

&lt;p class=afffff5 style=&#39;margin-right:1.0pt;text-indent:13.0pt;line-height:11.05pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:
ftn19&#39; href=&#34;#_ftnref19&#34; name=&#34;_ftn19&#34; title=&#34;&#34;&gt;&lt;span class=a6&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=a6&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[19]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a6&gt;&lt;span lang=EN-US&gt; They would of course be estimateable if the &lt;/span&gt;&lt;/span&gt;&lt;span
class=a7&gt;&lt;span lang=EN-US&gt;state&lt;/span&gt;&lt;/span&gt;&lt;span class=a6&gt;&lt;span lang=EN-US&gt;
sequence were observed rather than only the corresponding feature vectors.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn20&gt;

&lt;p class=afffff5 style=&#39;margin-right:1.0pt;text-indent:13.0pt;line-height:11.05pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:
ftn20&#39; href=&#34;#_ftnref20&#34; name=&#34;_ftn20&#34; title=&#34;&#34;&gt;&lt;span class=a6&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=a6&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[20]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a6&gt;&lt;span lang=EN-US&gt;These MRPs can equivalently be considered MDPs with a
single action in all states; what we conclude about them here applies as well
to MDPs.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn21&gt;

&lt;p class=afffff5 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:13.0pt;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:
ftn21&#39; href=&#34;#_ftnref21&#34; name=&#34;_ftn21&#34; title=&#34;&#34;&gt;&lt;span class=a6&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=a6&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[21]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a6&gt;&lt;span lang=EN-US&gt;The lone exception is the gradient bandit algorithms
of Section 2.8. In fact, that section goes through many of the same steps, in
the single-state bandit case, as we go through here for full MDPs. Reviewing
that section would be good preparation for fully understanding this chapter.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn22&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:0cm;
margin-left:12.0pt;margin-bottom:.0001pt;line-height:13.45pt;mso-line-height-rule:
exactly;tab-stops:125.75pt;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:
ftn22&#39; href=&#34;#_ftnref22&#34; name=&#34;_ftn22&#34; title=&#34;&#34;&gt;&lt;/a&gt;&lt;span class=210&gt;&lt;span
lang=EN-US&gt;The vector&lt;span style=&#39;mso-tab-count:1&#39;&gt;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;/span&gt;in
the REINFORCE update is the only place the policy&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:13.35pt;
margin-left:0cm;line-height:13.45pt;mso-line-height-rule:exactly;background:
transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;parameterization appears in the
algorithm. This vector has been given several names and notations in the
literature; we will refer to it simply as the &lt;/span&gt;&lt;/span&gt;&lt;span class=211&gt;&lt;span
lang=EN-US&gt;eligibility vector.&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;
The eligibility vector is often written in the compact form Ve logn(At|St, &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;), using the identity V log x =&lt;/span&gt;&lt;/span&gt;&lt;span
class=21MingLiU&gt;&lt;span style=&#39;font-size:9.0pt&#39;&gt;\BE\AF&lt;/span&gt;&lt;/span&gt;&lt;span class=211pt&gt;&lt;span
lang=EN-US&gt;.This&lt;/span&gt;&lt;/span&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt; form is used in
all the boxed pseudocode in this chapter. In earlier examples in this chapter
we considered exponential softmax policies (13.2) with linear action
preferences (13.3). For this parameterization, the eligibility vector is&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=21f2 align=left style=&#39;margin-top:0cm;margin-right:0cm;margin-bottom:
3.5pt;margin-left:28.0pt;text-align:left;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=210&gt;&lt;span lang=EN-US&gt;Ve logn(a|s, &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;) = x(s, a) - ^ n(b|s, &lt;/span&gt;&lt;/span&gt;&lt;span
class=21Batang0&gt;&lt;span lang=EN-US style=&#39;font-size:7.5pt&#39;&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=210&gt;&lt;span lang=EN-US&gt;)x(s, b).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=208 style=&#39;margin-left:163.0pt;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;span class=201&gt;&lt;span lang=EN-US&gt;b&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn23&gt;

&lt;p class=afffff5 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:13.0pt;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:
ftn23&#39; href=&#34;#_ftnref23&#34; name=&#34;_ftn23&#34; title=&#34;&#34;&gt;&lt;span class=a8&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=a8&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[23]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt;Technically, this is only true if each episode\A1\AFs
updates are done &lt;/span&gt;&lt;/span&gt;&lt;span class=a9&gt;&lt;span lang=EN-US&gt;off-line,&lt;/span&gt;&lt;/span&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt; meaning they are accumulated on the side during the
episode and only used to change &lt;/span&gt;&lt;/span&gt;&lt;span class=a9&gt;&lt;span lang=EN-US&gt;6&lt;/span&gt;&lt;/span&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt; by their sum at the episode\A1\AFs end. However, this
would probably be a worse algorithm in practice, and its desireable theoretical
properties would probably be shared by the algorithm as given (although this
has not been proved).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn24&gt;

&lt;p class=2f7 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-indent:11.0pt;line-height:13.45pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:
ftn24&#39; href=&#34;#_ftnref24&#34; name=&#34;_ftn24&#34; title=&#34;&#34;&gt;&lt;/a&gt;&lt;span lang=EN-US&gt;The
generalizations to the forward view of multi-step methods and then to a
X-return algorithm are straightforward. The one-step return in (13.10) is
merely replaced by G^&lt;/span&gt;&lt;span class=2MingLiU2&gt;&lt;sub&gt;&lt;span style=&#39;font-size:
11.5pt&#39;&gt;\A3\BA&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span lang=EN-US&gt;t+&lt;sub&gt;fc&lt;/sub&gt; and G^
respectively. The backward views are also straightforward, using separate
eligibility traces for the actor and critic, each after the patterns in Chapter
12. Pseudocode for the complete algorithm is given in the box on the next page.&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn25&gt;

&lt;p class=afffff5 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:13.0pt;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:
ftn25&#39; href=&#34;#_ftnref25&#34; name=&#34;_ftn25&#34; title=&#34;&#34;&gt;&lt;span class=a8&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=a8&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[25]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt;What control means for us is different from what it
typically means in animal learning theories; there the environment controls the
agent instead of the other way around. See our comments on terminology at the
end of this chapter.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn26&gt;

&lt;p class=afffff5 style=&#39;margin-top:0cm;margin-right:1.0pt;margin-bottom:0cm;
margin-left:1.0pt;margin-bottom:.0001pt;text-align:justify;text-justify:inter-ideograph;
text-indent:13.0pt;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn26&#39;
href=&#34;#_ftnref26&#34; name=&#34;_ftn26&#34; title=&#34;&#34;&gt;&lt;span class=a8&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=a8&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[26]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt; Comparison with a control group is necessary to show
that the previous conditioning to the tone is responsible for blocking learning
to the light. This is done by trials with the tone/light CS but with no prior
conditioning to the tone. Learning to the light in this case is unimpaired. Moore
and Schmajuk (2008) give a full account of this procedure.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn27&gt;

&lt;p class=afffff5 style=&#39;text-align:justify;text-justify:inter-ideograph;
text-indent:13.0pt;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn27&#39;
href=&#34;#_ftnref27&#34; name=&#34;_ftn27&#34; title=&#34;&#34;&gt;&lt;span class=a8&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=a8&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[27]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt;The only differences between the LMS rule and the
Rescorla-Wagner model are that for LMS the input vectors xt can have any real
numbers as components, and\A1\AAat least in the simplest version of the LMS rule\A1\AAthe
step-size parameter &lt;/span&gt;&lt;/span&gt;&lt;span class=a9&gt;&lt;span lang=EN-US&gt;a&lt;/span&gt;&lt;/span&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt; does not depend on the input vector or the identity
of the stimulus setting the prediction target.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn28&gt;

&lt;p class=afffff5 align=right style=&#39;margin-right:1.0pt;text-align:right;
background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn28&#39; href=&#34;#_ftnref28&#34;
name=&#34;_ftn28&#34; title=&#34;&#34;&gt;&lt;span class=a8&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=a8&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[28]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt;In our formalism, there is a different state, &lt;/span&gt;&lt;/span&gt;&lt;span
class=a9&gt;&lt;span lang=EN-US&gt;St,&lt;/span&gt;&lt;/span&gt;&lt;span class=a8&gt;&lt;span lang=EN-US&gt; for
each time step &lt;/span&gt;&lt;/span&gt;&lt;span class=a9&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt; during a trial, and for a trial in which a compound
CS consists of &lt;/span&gt;&lt;/span&gt;&lt;span class=a9&gt;&lt;span lang=EN-US&gt;n&lt;/span&gt;&lt;/span&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt; component CSs of various durations occurring at
various times&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn29&gt;

&lt;p class=afffff5 style=&#39;margin-right:1.0pt;text-align:justify;text-justify:
inter-ideograph;text-indent:13.0pt;tab-stops:16.55pt;background:transparent&#39;&gt;&lt;a
style=&#39;mso-footnote-id:ftn29&#39; href=&#34;#_ftnref29&#34; name=&#34;_ftn29&#34; title=&#34;&#34;&gt;&lt;span
class=Batang0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=Batang0&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt;mso-ansi-language:
EN-US;mso-fareast-language:ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[29]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt;As we mentioned in Section 6.1, &lt;/span&gt;&lt;/span&gt;&lt;span
class=a9&gt;&lt;span lang=EN-US&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span class=a8&gt;&lt;span lang=EN-US&gt; in
our notation is defined to be &lt;/span&gt;&lt;/span&gt;&lt;span class=MingLiU0&gt;&lt;span
style=&#39;font-size:11.5pt;mso-ansi-language:ZH-TW&#39;&gt;ֻ&lt;/span&gt;&lt;/span&gt;&lt;span
class=Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;t+i &lt;/span&gt;&lt;/span&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt;+ &lt;/span&gt;&lt;/span&gt;&lt;span class=Batang2&gt;&lt;span lang=EN-US
style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=a8&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span
class=Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;St+i&lt;/span&gt;&lt;/span&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt;) \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span class=aa&gt;&lt;span lang=EN-US&gt;V(St),&lt;/span&gt;&lt;/span&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt; so &lt;/span&gt;&lt;/span&gt;&lt;span class=a9&gt;&lt;span lang=EN-US&gt;St &lt;/span&gt;&lt;/span&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt;is not available until time &lt;/span&gt;&lt;/span&gt;&lt;span
class=Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt;+1. The TD error &lt;/span&gt;&lt;/span&gt;&lt;span class=a9&gt;&lt;span
lang=EN-US&gt;available&lt;/span&gt;&lt;/span&gt;&lt;span class=a8&gt;&lt;span lang=EN-US&gt; at &lt;/span&gt;&lt;/span&gt;&lt;span
class=a9&gt;&lt;span lang=EN-US&gt;t&lt;/span&gt;&lt;/span&gt;&lt;span class=a8&gt;&lt;span lang=EN-US&gt; is
actually &lt;/span&gt;&lt;/span&gt;&lt;span class=Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:
9.5pt&#39;&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span class=a8&gt;&lt;sub&gt;&lt;span lang=EN-US&gt;-&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
class=Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i &lt;/span&gt;&lt;/span&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt;= &lt;/span&gt;&lt;/span&gt;&lt;span class=a9&gt;&lt;span lang=EN-US&gt;Rt&lt;/span&gt;&lt;/span&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt; + &lt;/span&gt;&lt;/span&gt;&lt;span class=Batang2&gt;&lt;span
lang=EN-US style=&#39;font-size:9.0pt&#39;&gt;7&lt;/span&gt;&lt;/span&gt;&lt;span class=Batang1&gt;&lt;span
lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span class=a8&gt;&lt;span
lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span class=a8&gt;&lt;span lang=EN-US&gt;) \A1\AA &lt;/span&gt;&lt;/span&gt;&lt;span
class=Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt;(&lt;/span&gt;&lt;/span&gt;&lt;span class=Batang1&gt;&lt;span lang=EN-US
style=&#39;font-size:9.5pt&#39;&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span class=a8&gt;&lt;sub&gt;&lt;span lang=EN-US&gt;-&lt;/span&gt;&lt;/sub&gt;&lt;/span&gt;&lt;span
class=Batang1&gt;&lt;span lang=EN-US style=&#39;font-size:9.5pt&#39;&gt;i&lt;/span&gt;&lt;/span&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt;). Since we are thinking of time steps as very small,
or even infinitesimal, time intervals, one should not attribute undue
importance to this one-step time shift.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn30&gt;

&lt;p class=afffff5 style=&#39;margin-right:1.0pt;text-indent:13.0pt;line-height:11.3pt;
mso-line-height-rule:exactly;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:
ftn30&#39; href=&#34;#_ftnref30&#34; name=&#34;_ftn30&#34; title=&#34;&#34;&gt;&lt;span class=a8&gt;&lt;sup&gt;&lt;span
lang=EN-US&gt;&lt;span style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span
class=a8&gt;&lt;sup&gt;&lt;span lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:
ZH-CN;mso-bidi-language:AR-SA&#39;&gt;[30]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt;In the literature relating TD errors to the activity
of dopamine neurons, their &lt;/span&gt;&lt;/span&gt;&lt;span class=a9&gt;&lt;span lang=EN-US&gt;St&lt;/span&gt;&lt;/span&gt;&lt;span
class=a8&gt;&lt;span lang=EN-US&gt; is the same as our St-i = &lt;/span&gt;&lt;/span&gt;&lt;span
class=a9&gt;&lt;span lang=EN-US&gt;Rt&lt;/span&gt;&lt;/span&gt;&lt;span class=a8&gt;&lt;span lang=EN-US&gt; + YV
(St) - V (St-i).&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn31&gt;

&lt;p class=afffff5 style=&#39;margin-left:13.0pt;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn31&#39;
href=&#34;#_ftnref31&#34; name=&#34;_ftn31&#34; title=&#34;&#34;&gt;&lt;span class=ab&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=ab&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[31]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=ab&gt;&lt;span lang=EN-US&gt; Registered trademark of IBM Corp.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div style=&#39;mso-element:footnote&#39; id=ftn32&gt;

&lt;p class=afffff5 style=&#39;margin-left:13.0pt;line-height:8.0pt;mso-line-height-rule:
exactly;background:transparent&#39;&gt;&lt;a style=&#39;mso-footnote-id:ftn32&#39;
href=&#34;#_ftnref32&#34; name=&#34;_ftn32&#34; title=&#34;&#34;&gt;&lt;span class=ab&gt;&lt;sup&gt;&lt;span lang=EN-US&gt;&lt;span
style=&#39;mso-special-character:footnote&#39;&gt;&lt;![if !supportFootnotes]&gt;&lt;span class=ab&gt;&lt;sup&gt;&lt;span
lang=EN-US style=&#39;font-size:8.0pt;mso-fareast-language:ZH-CN;mso-bidi-language:
AR-SA&#39;&gt;[32]&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;![endif]&gt;&lt;/span&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/a&gt;&lt;span
class=ab&gt;&lt;span lang=EN-US&gt;Registered trademark of Jeopardy Productions Inc.&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;/body&gt;&lt;/p&gt;

&lt;p&gt;&lt;/html&gt;&lt;/p&gt;
</description>
    </item>
    
    <item>
      <title>Deep learning 100&#43; projects</title>
      <link>https://wormcode.github.io/post/dl_projects/</link>
      <pubDate>Thu, 30 May 2019 00:00:00 +0000</pubDate>
      
      <guid>https://wormcode.github.io/post/dl_projects/</guid>
      <description>&lt;p&gt;&lt;strong&gt;Projects&lt;/strong&gt;&lt;/p&gt;

&lt;ul&gt;
&lt;li&gt;1. comments classification&lt;/li&gt;
&lt;/ul&gt;

&lt;p&gt;this is the first deep learning project use the baby neural network,
it is a binary classification.
it  have some problems, the accurate is low.
please fix the problem.&lt;/p&gt;

&lt;p&gt;&lt;a href=&#34;http://www.cs.cornell.edu/people/pabo/movie-review-data/rt-polaritydata.tar.gz&#34; target=&#34;_blank&#34;&gt;data:&lt;/a&gt; &lt;a href=&#34;http://www.cs.cornell.edu/people/pabo/movie-review-data/rt-polaritydata.tar.gz&#34; target=&#34;_blank&#34;&gt;http://www.cs.cornell.edu/people/pabo/movie-review-data/rt-polaritydata.tar.gz&lt;/a&gt;
&lt;a href=&#34;http://www.cs.cornell.edu/people/pabo/movie-review-data/&#34; target=&#34;_blank&#34;&gt;more data:&lt;/a&gt; &lt;a href=&#34;http://www.cs.cornell.edu/people/pabo/movie-review-data/&#34; target=&#34;_blank&#34;&gt;http://www.cs.cornell.edu/people/pabo/movie-review-data/&lt;/a&gt;&lt;/p&gt;

&lt;p&gt;&amp;rdquo;&amp;lsquo;sh
安装nltk（自然语言工具库 &lt;a href=&#34;http://www.nltk.org/&#34; target=&#34;_blank&#34;&gt;Natural Language Toolkit&lt;/a&gt;）
$ pip install nltk&lt;/p&gt;

&lt;p&gt;$ python
Python 3.5.2 (v3.5.2:4def2a2901a5, Jun 26 2016, 10:47:25)
[GCC 4.2.1 (Apple Inc. build 5666) (dot 3)] on darwin
Type &amp;ldquo;help&amp;rdquo;, &amp;ldquo;copyright&amp;rdquo;, &amp;ldquo;credits&amp;rdquo; or &amp;ldquo;license&amp;rdquo; for more information.&lt;/p&gt;

&lt;blockquote&gt;
&lt;blockquote&gt;
&lt;blockquote&gt;
&lt;p&gt;import nltk
nltk.download()&lt;/p&gt;
&lt;/blockquote&gt;
&lt;/blockquote&gt;
&lt;/blockquote&gt;

&lt;p&gt;下载nltk数据：
$ python
Python 3.5.2 (v3.5.2:4def2a2901a5, Jun 26 2016, 10:47:25)
[GCC 4.2.1 (Apple Inc. build 5666) (dot 3)] on darwin
Type &amp;ldquo;help&amp;rdquo;, &amp;ldquo;copyright&amp;rdquo;, &amp;ldquo;credits&amp;rdquo; or &amp;ldquo;license&amp;rdquo; for more information.
&amp;gt;&amp;gt;&amp;gt; import nltk
&amp;gt;&amp;gt;&amp;gt; nltk.download()&lt;/p&gt;

&lt;p&gt;ntlk有详细安装文档。&lt;/p&gt;

&lt;p&gt;测试nltk安装：
&amp;gt;&amp;gt;&amp;gt; from nltk.corpus import brown
&amp;gt;&amp;gt;&amp;gt; brown.words()
[&amp;lsquo;The&amp;rsquo;, &amp;lsquo;Fulton&amp;rsquo;, &amp;lsquo;County&amp;rsquo;, &amp;lsquo;Grand&amp;rsquo;, &amp;lsquo;Jury&amp;rsquo;, &amp;lsquo;said&amp;rsquo;, &amp;hellip;]&lt;/p&gt;

&lt;p&gt;&amp;rdquo;&amp;rsquo;&lt;/p&gt;

&lt;p&gt;there are problems with this neural networks, that result not work
there are couple of tips for you to figure it out:
1. Is it get enough data?
2. How about  the capacity of networks?&lt;/p&gt;
</description>
    </item>
    
    <item>
      <title>翻译 Conditional Generative Adversarial Nets</title>
      <link>https://wormcode.github.io/post/cgan/</link>
      <pubDate>Thu, 30 May 2019 00:00:00 +0000</pubDate>
      
      <guid>https://wormcode.github.io/post/cgan/</guid>
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xmlns:o=&#34;urn:schemas-microsoft-com:office:office&#34;
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xmlns:m=&#34;http://schemas.microsoft.com/office/2004/12/omml&#34;
xmlns=&#34;http://www.w3.org/TR/REC-html40&#34;&gt;&lt;/p&gt;

&lt;p&gt;&lt;head&gt;
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charset=unicode&#34;&gt;
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&lt;p&gt;&lt;title&gt;Conditional Generative Adversarial Nets&lt;/title&gt;&lt;/p&gt;

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ML-CSS/TeX/woff/MathJax_Size3-Regular.woff&amp;rsquo;) format(&amp;lsquo;woff&amp;rsquo;),
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(&amp;lsquo;&lt;a href=&#34;https://cdnjs.cloudflare.com/ajax/libs/mathjax/2.7.2/fonts/HT&#34; target=&#34;_blank&#34;&gt;https://cdnjs.cloudflare.com/ajax/libs/mathjax/2.7.2/fonts/HT&lt;/a&gt;
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@font-face
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@font-face
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@font-face
    {src: local(&amp;lsquo;MathJax_Vector&amp;rsquo;), local(&amp;lsquo;MathJax_Vector-
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@font-face
    {src /&lt;em&gt;2&lt;/em&gt;/: url
(&amp;lsquo;&lt;a href=&#34;https://cdnjs.cloudflare.com/ajax/libs/mathjax/2.7.2/fonts/HT&#34; target=&#34;_blank&#34;&gt;https://cdnjs.cloudflare.com/ajax/libs/mathjax/2.7.2/fonts/HT&lt;/a&gt;
ML-CSS/TeX/woff/MathJax_Vector-Regular.woff&amp;rsquo;) format(&amp;lsquo;woff&amp;rsquo;),
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ML-CSS/TeX/otf/MathJax_Vector-Regular.otf&amp;rsquo;) format(&amp;lsquo;opentype&amp;rsquo;);
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@font-face
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@font-face
    {src: local(&amp;lsquo;MathJax_Vector&amp;rsquo;);
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@font-face
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&lt;p&gt;/* Font Definitions &lt;em&gt;/
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@font-face
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    {font-family:MJXc-TeX-math-BIw;
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    mso-generic-font-family:roman;
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    mso-generic-font-family:roman;
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@font-face
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    mso-font-charset:0;
    mso-generic-font-family:roman;
    mso-font-format:other;
    mso-font-pitch:auto;
    mso-font-signature:0 0 0 0 0 0;}
@font-face
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    panose-1:0 0 0 0 0 0 0 0 0 0;
    mso-font-charset:0;
    mso-generic-font-family:roman;
    mso-font-format:other;
    mso-font-pitch:auto;
    mso-font-signature:0 0 0 0 0 0;}
@font-face
    {font-family:MJXc-TeX-size2-Rw;
    panose-1:0 0 0 0 0 0 0 0 0 0;
    mso-font-charset:0;
    mso-generic-font-family:roman;
    mso-font-format:other;
    mso-font-pitch:auto;
    mso-font-signature:0 0 0 0 0 0;}
@font-face
    {font-family:MJXc-TeX-size3-Rw;
    panose-1:0 0 0 0 0 0 0 0 0 0;
    mso-font-charset:0;
    mso-generic-font-family:roman;
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    mso-font-pitch:auto;
    mso-font-signature:0 0 0 0 0 0;}
@font-face
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    panose-1:0 0 0 0 0 0 0 0 0 0;
    mso-font-charset:0;
    mso-generic-font-family:roman;
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    panose-1:0 0 0 0 0 0 0 0 0 0;
    mso-font-charset:0;
    mso-generic-font-family:roman;
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 /&lt;/em&gt; Style Definitions &lt;em&gt;/
 p.MsoNormal, li.MsoNormal, div.MsoNormal
    {mso-style-unhide:no;
    mso-style-qformat:yes;
    mso-style-parent:&amp;ldquo;&amp;rdquo;;
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    mso-pagination:widow-orphan;
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h1
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    mso-style-unhide:no;
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    mso-style-link:&amp;ldquo;Heading 1 Char&amp;rdquo;;
    mso-margin-top-alt:auto;
    margin-right:0cm;
    mso-margin-bottom-alt:auto;
    margin-left:0cm;
    mso-pagination:widow-orphan;
    mso-outline-level:1;
    font-size:24.0pt;
    font-family:宋体;
    mso-bidi-font-family:宋体;
    font-weight:bold;}
h2
    {mso-style-priority:9;
    mso-style-unhide:no;
    mso-style-qformat:yes;
    mso-style-link:&amp;ldquo;Heading 2 Char&amp;rdquo;;
    mso-margin-top-alt:auto;
    margin-right:0cm;
    mso-margin-bottom-alt:auto;
    margin-left:0cm;
    mso-pagination:widow-orphan;
    mso-outline-level:2;
    font-size:18.0pt;
    font-family:宋体;
    mso-bidi-font-family:宋体;
    font-weight:bold;}
h3
    {mso-style-priority:9;
    mso-style-unhide:no;
    mso-style-qformat:yes;
    mso-style-link:&amp;ldquo;Heading 3 Char&amp;rdquo;;
    mso-margin-top-alt:auto;
    margin-right:0cm;
    mso-margin-bottom-alt:auto;
    margin-left:0cm;
    mso-pagination:widow-orphan;
    mso-outline-level:3;
    font-size:13.5pt;
    font-family:宋体;
    mso-bidi-font-family:宋体;
    font-weight:bold;}
h4
    {mso-style-priority:9;
    mso-style-unhide:no;
    mso-style-qformat:yes;
    mso-style-link:&amp;ldquo;Heading 4 Char&amp;rdquo;;
    mso-margin-top-alt:auto;
    margin-right:0cm;
    mso-margin-bottom-alt:auto;
    margin-left:0cm;
    mso-pagination:widow-orphan;
    mso-outline-level:4;
    font-size:12.0pt;
    font-family:宋体;
    mso-bidi-font-family:宋体;
    font-weight:bold;}
h5
    {mso-style-priority:9;
    mso-style-unhide:no;
    mso-style-qformat:yes;
    mso-style-link:&amp;ldquo;Heading 5 Char&amp;rdquo;;
    mso-margin-top-alt:auto;
    margin-right:0cm;
    mso-margin-bottom-alt:auto;
    margin-left:0cm;
    mso-pagination:widow-orphan;
    mso-outline-level:5;
    font-size:10.0pt;
    font-family:宋体;
    mso-bidi-font-family:宋体;
    font-weight:bold;}
h6
    {mso-style-priority:9;
    mso-style-unhide:no;
    mso-style-qformat:yes;
    mso-style-link:&amp;ldquo;Heading 6 Char&amp;rdquo;;
    mso-margin-top-alt:auto;
    margin-right:0cm;
    mso-margin-bottom-alt:auto;
    margin-left:0cm;
    mso-pagination:widow-orphan;
    mso-outline-level:6;
    font-size:7.5pt;
    font-family:宋体;
    mso-bidi-font-family:宋体;
    font-weight:bold;}
a:link, span.MsoHyperlink
    {mso-style-noshow:yes;
    mso-style-priority:99;
    color:blue;
    text-decoration:underline;
    text-underline:single;}
a:visited, span.MsoHyperlinkFollowed
    {mso-style-noshow:yes;
    mso-style-priority:99;
    color:purple;
    text-decoration:underline;
    text-underline:single;}
p
    {mso-style-noshow:yes;
    mso-style-priority:99;
    mso-margin-top-alt:auto;
    margin-right:0cm;
    mso-margin-bottom-alt:auto;
    margin-left:0cm;
    mso-pagination:widow-orphan;
    font-size:12.0pt;
    font-family:宋体;
    mso-bidi-font-family:宋体;}
p.MsoAcetate, li.MsoAcetate, div.MsoAcetate
    {mso-style-noshow:yes;
    mso-style-priority:99;
    mso-style-link:&amp;ldquo;Balloon Text Char&amp;rdquo;;
    margin:0cm;
    margin-bottom:.0001pt;
    mso-pagination:widow-orphan;
    font-size:8.0pt;
    font-family:宋体;
    mso-bidi-font-family:宋体;}
span.Heading1Char
    {mso-style-name:&amp;ldquo;Heading 1 Char&amp;rdquo;;
    mso-style-priority:9;
    mso-style-unhide:no;
    mso-style-locked:yes;
    mso-style-link:&amp;ldquo;Heading 1&amp;rdquo;;
    mso-ansi-font-size:22.0pt;
    mso-bidi-font-size:22.0pt;
    font-family:宋体;
    mso-ascii-font-family:宋体;
    mso-fareast-font-family:宋体;
    mso-hansi-font-family:宋体;
    mso-bidi-font-family:宋体;
    mso-font-kerning:22.0pt;
    font-weight:bold;}
span.Heading2Char
    {mso-style-name:&amp;ldquo;Heading 2 Char&amp;rdquo;;
    mso-style-priority:9;
    mso-style-unhide:no;
    mso-style-locked:yes;
    mso-style-link:&amp;ldquo;Heading 2&amp;rdquo;;
    mso-ansi-font-size:16.0pt;
    mso-bidi-font-size:16.0pt;
    font-family:&amp;ldquo;Cambria&amp;rdquo;,&amp;ldquo;serif&amp;rdquo;;
    mso-ascii-font-family:Cambria;
    mso-ascii-theme-font:major-latin;
    mso-fareast-font-family:宋体;
    mso-fareast-theme-font:major-fareast;
    mso-hansi-font-family:Cambria;
    mso-hansi-theme-font:major-latin;
    mso-bidi-font-family:&amp;ldquo;Times New Roman&amp;rdquo;;
    mso-bidi-theme-font:major-bidi;
    font-weight:bold;}
span.Heading3Char
    {mso-style-name:&amp;ldquo;Heading 3 Char&amp;rdquo;;
    mso-style-priority:9;
    mso-style-unhide:no;
    mso-style-locked:yes;
    mso-style-link:&amp;ldquo;Heading 3&amp;rdquo;;
    mso-ansi-font-size:16.0pt;
    mso-bidi-font-size:16.0pt;
    font-family:宋体;
    mso-ascii-font-family:宋体;
    mso-fareast-font-family:宋体;
    mso-hansi-font-family:宋体;
    mso-bidi-font-family:宋体;
    font-weight:bold;}
span.Heading4Char
    {mso-style-name:&amp;ldquo;Heading 4 Char&amp;rdquo;;
    mso-style-priority:9;
    mso-style-unhide:no;
    mso-style-locked:yes;
    mso-style-link:&amp;ldquo;Heading 4&amp;rdquo;;
    mso-ansi-font-size:14.0pt;
    mso-bidi-font-size:14.0pt;
    font-family:&amp;ldquo;Cambria&amp;rdquo;,&amp;ldquo;serif&amp;rdquo;;
    mso-ascii-font-family:Cambria;
    mso-ascii-theme-font:major-latin;
    mso-fareast-font-family:宋体;
    mso-fareast-theme-font:major-fareast;
    mso-hansi-font-family:Cambria;
    mso-hansi-theme-font:major-latin;
    mso-bidi-font-family:&amp;ldquo;Times New Roman&amp;rdquo;;
    mso-bidi-theme-font:major-bidi;
    font-weight:bold;}
span.Heading5Char
    {mso-style-name:&amp;ldquo;Heading 5 Char&amp;rdquo;;
    mso-style-noshow:yes;
    mso-style-priority:9;
    mso-style-unhide:no;
    mso-style-locked:yes;
    mso-style-link:&amp;ldquo;Heading 5&amp;rdquo;;
    mso-ansi-font-size:14.0pt;
    mso-bidi-font-size:14.0pt;
    font-family:宋体;
    mso-ascii-font-family:宋体;
    mso-fareast-font-family:宋体;
    mso-hansi-font-family:宋体;
    mso-bidi-font-family:宋体;
    font-weight:bold;}
span.Heading6Char
    {mso-style-name:&amp;ldquo;Heading 6 Char&amp;rdquo;;
    mso-style-priority:9;
    mso-style-unhide:no;
    mso-style-locked:yes;
    mso-style-link:&amp;ldquo;Heading 6&amp;rdquo;;
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content=&#34;Generative Adversarial Nets [8] were recently 
introduced as a novel&amp;#13;&amp;#10;way to train generative models. 
In this work we introduce the conditional&amp;#13;&amp;#10;version of 
generative adversarial nets, which can be constructed by simply 
feeding&amp;#13;&amp;#10;the data, y, we wish to condition on to both 
the generator and discriminator.&amp;#13;&amp;#10;We show that this 
model can generate MNIST digits conditioned on class 
labels.&amp;#13;&amp;#10;We also illustrate how this model could be 
used to learn a multi-modal model, and 
provide&amp;#13;&amp;#10;preliminary examples of an application to 
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&lt;p&gt;&lt;meta name=&#34;citation_title&#34; content=&#34;Conditional Generative 
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&lt;meta name=&#34;citation_author&#34; content=&#34;Mehdi Mirza&#34;&gt;
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interval:21.0pt&#39;&gt;&lt;/p&gt;

&lt;div class=WordSection1&gt;

&lt;h1&gt;&lt;span lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;Conditional 
Generative
Adversarial Nets&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/h1&gt;

&lt;div&gt;

&lt;p class=MsoNormal&gt;&lt;span class=ltxpersonname&gt;&lt;span lang=EN 
style=&#39;mso-ansi-language:
EN&#39;&gt;Mehdi Mirza &lt;/span&gt;&lt;/span&gt;&lt;span lang=EN style=&#39;mso-ansi-
language:EN&#39;&gt;&lt;br&gt;
&lt;span class=ltxpersonname&gt;D&lt;/span&gt;&lt;/span&gt;&lt;span 
class=ltxpersonname&gt;&lt;span
style=&#39;mso-ansi-language:EN&#39;&gt;é&lt;span class=SpellE&gt;&lt;span 
lang=EN&gt;partement&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN&gt; d&lt;/span&gt;’&lt;span class=SpellE&gt;&lt;span 
lang=EN&gt;informatique&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN&gt; et de &lt;span class=SpellE&gt;recherche&lt;/span&gt; 
op&lt;/span&gt;é&lt;span
class=SpellE&gt;&lt;span lang=EN&gt;rationnelle&lt;/span&gt;&lt;/span&gt;&lt;span 
lang=EN&gt; &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;&lt;br&gt;
&lt;span class=SpellE&gt;&lt;span 
class=ltxpersonname&gt;Universit&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=ltxpersonname&gt;&lt;span style=&#39;mso-ansi-language:EN&#39;&gt;é&lt;span 
lang=EN&gt; de &lt;span
class=SpellE&gt;Montr&lt;/span&gt;&lt;/span&gt;é&lt;span lang=EN&gt;al 
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;&lt;br&gt;
&lt;span class=SpellE&gt;&lt;span 
class=ltxpersonname&gt;Montr&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=ltxpersonname&gt;&lt;span style=&#39;mso-ansi-language:EN&#39;&gt;é&lt;span 
lang=EN&gt;al, QC
H3C 3J7 &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN style=&#39;mso-ansi-
language:EN&#39;&gt;&lt;br&gt;
&lt;span class=ltxtext&gt;mirzamom@iro.umontreal.ca&lt;/span&gt;&lt;span 
class=ltxpersonname&gt; &lt;/span&gt;&lt;span
class=ltxerror&gt;\&lt;span class=SpellE&gt;AND&lt;span 
class=ltxpersonname&gt;Simon&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=ltxpersonname&gt; &lt;span class=SpellE&gt;Osindero&lt;/span&gt; 
&lt;/span&gt;&lt;br&gt;
&lt;span class=ltxpersonname&gt;Flickr / Yahoo Inc. &lt;/span&gt;&lt;br&gt;
&lt;span class=ltxpersonname&gt;San Francisco, CA 94103 &lt;/span&gt;&lt;br&gt;
&lt;span class=ltxtext&gt;osindero@yahoo-inc.com&lt;/span&gt;&lt;span 
class=ltxpersonname&gt; &lt;/span&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto;
mso-outline-level:2&#39;&gt;&lt;b&gt;&lt;span style=&#39;font-size:18.0pt&#39;&gt;摘要
&lt;span lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto&#39;&gt;最近，&lt;span
lang=EN-US&gt; Generative Adversarial Nets &lt;i&gt;[ &lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span style=&#39;font-
size:11.0pt&#39;&gt;8&lt;/span&gt;&lt;/a&gt; ]&lt;/i&gt;&lt;/span&gt;被引入作为训练生成模型的
新方法。
在这项工作中，我们介绍了生成对抗网的条件版本，它可以通过简单地提
供数据&lt;span lang=EN-US&gt;y&lt;/span&gt;来构造，我们希望对生成器和鉴别器
都&lt;span
style=&#39;color:red&#39;&gt;进行条件化&lt;/span&gt;。 我们证明该模型可以生成以类
标签为条件的&lt;span lang=EN-US&gt;MNIST&lt;/span&gt;数字。
我们还说明了如何使用此模型来学习多模态模型，并提供图像标记应用程
序的初步示例，其中我们演示了此方法如何生成不属于训练标签的描述性
标记。 &lt;span
lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;section class=&#34;ltx_section&#34; id=&#34;S1&#34;&gt;&lt;/p&gt;

&lt;div id=S1.p1&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto;
mso-outline-level:2&#39;&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-
size:18.0pt&#39;&gt;1&lt;/span&gt;&lt;/b&gt;&lt;b&gt;&lt;span
style=&#39;font-size:18.0pt&#39;&gt;简介 &lt;span lang=EN-
US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto&#39;&gt;最近引入了生成性对抗网作为训练生成模型的替代框
架，以避免许多难以处理的概率近似计算的困难。
&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S1.p2&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto&#39;&gt;对抗网具有以下优点：永远不需要马尔可夫链，仅使
用反向传播来获得梯度，在学习期间不需要推理，并且可以容易地将各种
因素和交互作用吸收到模型中。
&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S1.p3&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto&#39;&gt;此外，如&lt;i&gt;&lt;span
lang=EN-US&gt;[ &lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span style=&#39;font-
size:11.0pt&#39;&gt;8&lt;/span&gt;&lt;/a&gt; ]&lt;/span&gt;所示&lt;/i&gt;
，它可以产生最先进的对数似然估计和逼真样本。 &lt;/p&gt;

&lt;/div&gt;

&lt;div id=S1.p4&gt;

&lt;p class=ltxp&gt;在无条件的生成模型中，无法控制正在生成的数据的模式
。 但是，通过附加信息调整模型，可以指导数据生成的过程。 这种条件
可以基于类别标签，在某些部分数据上进行修复，如&lt;i&gt;&lt;span
lang=EN-US&gt;[ &lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span style=&#39;font-
size:11.0pt&#39;&gt;5&lt;/span&gt;&lt;/a&gt; ]&lt;/span&gt;&lt;/i&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;，甚至是来自不同模态的数据。&lt;span lang=EN 
style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S1.p5&gt;

&lt;p class=ltxp&gt;在这项工作中，我们展示了如何构建条件对抗网。 对于
实证结果，我们展示了两组实验。 一个在&lt;span lang=EN-
US&gt;MNIST&lt;/span&gt;数字数据集上以类标签为条件，一个在&lt;span
lang=EN-US&gt;MIR Flickr 25,000&lt;/span&gt;数据集&lt;i&gt;&lt;span lang=EN-US&gt;[ 
&lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span style=&#39;font-
size:11.0pt&#39;&gt;10&lt;/span&gt;&lt;/a&gt; ]&lt;/span&gt;上&lt;/i&gt;用于多模态学习。&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto;
mso-outline-level:2&#39;&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-
size:18.0pt&#39;&gt;2&lt;/span&gt;&lt;/b&gt;&lt;b&gt;&lt;span
style=&#39;font-size:18.0pt&#39;&gt;相关工作&lt;span lang=EN-
US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto;
mso-outline-level:3&#39;&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-
size:13.5pt&#39;&gt;2.1&lt;/span&gt;&lt;/b&gt;&lt;b&gt;&lt;span
style=&#39;font-size:13.5pt&#39;&gt;用于图像标签的多模态学习
&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div id=S2.SS1.p1&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;尽管最近监督神经网络（特
别是卷积网络）取得了许多成功&lt;/span&gt;&lt;cite&gt;&lt;span
lang=EN-US style=&#39;font-family:宋体;mso-bidi-font-family:宋体&#39;&gt;[ 
&lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span class=ltxtext&gt;&lt;span 
style=&#39;font-size:11.0pt&#39;&gt;13,17&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;
]&lt;/span&gt;&lt;/cite&gt;&lt;span class=notranslate&gt;&lt;span lang=EN-US&gt; 
&lt;/span&gt;，但仍然难以扩展此类模型以适应预测极大量的输出类别。
&lt;/span&gt;第二个问题是迄今为止的大部分工作都集中在学习从输入到输出
的一对一映射。
&lt;span class=notranslate&gt;&lt;span onmouseover=&#34;_tipon(this)&#34; 
onmouseout=&#34;_tipoff()&#34;&gt;然而，许多有趣的问题更自然地被认为是概率
性的一对多映射。&lt;/span&gt;&lt;/span&gt;
&lt;span class=notranslate&gt;&lt;span onmouseover=&#34;_tipon(this)&#34; 
onmouseout=&#34;_tipoff()&#34;&gt;例如，在图像标记的情况下，对于一给定图像
可以适当地应用许多不同标签，并且不同（人）注释器可以使用不同（但
通常是同义或相关）术语来描述相同图像。&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S2.SS1.p2&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;帮助解决第一个问题的一种
方法是利用来自其他模态的附加信息：例如，通过使用自然语言语料库来
学习在几何关系上有&lt;span
style=&#39;color:red&#39;&gt;语义意义&lt;/span&gt;的标签的向量表示。&lt;/span&gt; 
&lt;span class=notranslate&gt;&lt;span
onmouseover=&#34;_tipon(this)&#34; onmouseout=&#34;_tipoff()&#34;&gt;当在这样的空
间中进行预测时，我们受益于以下事实：当预测错误时我们仍然经常“接
近”真实情况（例如，预测“桌子”而不是“椅子”），以及我们可以自然地
做出预测泛化到训练期间未见的标签的事实。&lt;/span&gt;&lt;/span&gt;
&lt;span class=notranslate&gt;&lt;span onmouseover=&#34;_tipon(this)&#34; 
onmouseout=&#34;_tipoff()&#34;&gt;诸如&lt;/span&gt;&lt;/span&gt;&lt;cite&gt;&lt;span
lang=EN-US style=&#39;font-family:宋体;mso-bidi-font-family:宋体&#39;&gt;[ 
&lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span class=ltxtext&gt;&lt;span 
style=&#39;font-size:11.0pt&#39;&gt;3&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;
]&lt;/span&gt;&lt;/cite&gt;&lt;cite&gt;&lt;span style=&#39;font-family:宋体;mso-bidi-
font-family:宋体&#39;&gt;之类的&lt;/span&gt;&lt;/cite&gt;&lt;span
class=notranslate&gt;工作表明，即使从图像特征空间到字表示空间的简单
线性映射也可以产生改进的分类性能。&lt;/span&gt;&lt;span lang=EN
style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S2.SS1.p3&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;解决第二个问题的一种方法
是使用条件概率生成模型，输入被视为条件变量，并且一对多映射被实例
化为条件预测分布。&lt;/span&gt;&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S2.SS1.p5&gt;

&lt;p class=ltxp&gt;&lt;cite&gt;&lt;span lang=EN style=&#39;font-family:宋体;mso-
bidi-font-family:
宋体;mso-ansi-language:EN&#39;&gt;&lt;span style=&#39;mso-
spacerun:yes&#39;&gt; &lt;/span&gt;&lt;/span&gt;&lt;/cite&gt;&lt;cite&gt;&lt;span
lang=EN-US style=&#39;font-family:宋体;mso-bidi-font-family:宋体&#39;&gt;[ 
&lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span class=ltxtext&gt;&lt;span 
style=&#39;font-size:11.0pt&#39;&gt;16&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;
]&lt;/span&gt;&lt;/cite&gt;&lt;span class=notranslate&gt;对这个问题采取了类似的方
法，并在&lt;span lang=EN-US&gt;MIR
Flickr 25,000&lt;/span&gt;数据集上训练多模态&lt;span lang=EN-US&gt;Deep 
Boltzmann&lt;/span&gt;机，就像我们在这项工作中所做的那样。&lt;/span&gt;
&lt;span lang=EN style=&#39;mso-ansi-
language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;此外，在
&lt;/span&gt;&lt;cite&gt;&lt;span lang=EN-US
style=&#39;font-family:宋体;mso-bidi-font-family:宋体&#39;&gt;[ &lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span class=ltxtext&gt;&lt;span 
style=&#39;font-size:11.0pt&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;
]&lt;/span&gt;&lt;/cite&gt;&lt;cite&gt;&lt;span style=&#39;font-family:宋体;mso-bidi-
font-family:宋体&#39;&gt;中&lt;/span&gt;&lt;/cite&gt;&lt;span
class=notranslate&gt; ，作者展示了如何训练有监督的多模态神经语言模
型，并且他们能够为图像生成描述性句子。&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto;
mso-outline-level:2&#39;&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-
size:18.0pt&#39;&gt;&lt;/section&gt;&lt;/section&gt;&lt;section class=&#34;ltx_section&#34; 
id=&#34;S3&#34;&gt;3
&lt;/span&gt;&lt;/b&gt;&lt;b&gt;&lt;span style=&#39;font-size:18.0pt&#39;&gt;条件对抗网络
&lt;/span&gt;&lt;/b&gt;&lt;span lang=EN
style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto;
mso-outline-level:3&#39;&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-
size:13.5pt&#39;&gt;&lt;section class=&#34;ltx_subsection&#34; 
id=&#34;S3.SS1&#34;&gt;3.1&lt;/span&gt;&lt;/b&gt;&lt;b&gt;&lt;span
style=&#39;font-size:13.5pt&#39;&gt;生成性对抗网&lt;span lang=EN-
US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div id=S3.SS1.p1&gt;

&lt;p class=ltxp&gt;最近引入了生成性对抗网作为训练生成模型的新方法。 
它们由两个“对抗”模型组成：一个捕获数据分布的生成模型&lt;span
lang=EN-US&gt;G &lt;/span&gt;，以及一个估计样本来自训练数据而不是&lt;span 
lang=EN-US&gt;G&lt;/span&gt;的概率的判别模型&lt;span
lang=EN-US&gt;D. G&lt;/span&gt;和&lt;span lang=EN-US&gt;D&lt;/span&gt;都可以是非线性
映射函数，例如多层感知器。&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S3.SS1.p3&gt;

&lt;p class=ltxp&gt;为了学习数据数据&lt;span lang=EN-US&gt;x&lt;/span&gt;上的生成
器分布&lt;span class=SpellE&gt;&lt;span
lang=EN-US&gt;pg&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-US&gt; &lt;/span&gt;，生成器将
先验噪声分布&lt;span
class=SpellE&gt;&lt;span lang=EN-US&gt;pz&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-
US&gt;(z)&lt;/span&gt;到数据空间的映射函数建立为&lt;span
lang=EN-US&gt;G(z;&lt;/span&gt;θ&lt;span lang=EN-US&gt;g)&lt;/span&gt;。 并且鉴别器
&lt;span lang=EN-US&gt;D(x;&lt;/span&gt;&lt;span
style=&#39;font-size:8.5pt&#39;&gt;θ&lt;span lang=EN-US&gt;d&lt;/span&gt;&lt;/span&gt;&lt;span 
lang=EN-US&gt;)&lt;/span&gt;输出单个标量，该标量表示&lt;span
lang=EN-US&gt;x&lt;/span&gt;来自训练数据而不是&lt;span class=SpellE&gt;&lt;span 
lang=EN-US&gt;p&lt;/span&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;g&lt;/span&gt;&lt;/span&gt;的概率。&lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span style=&#39;background:#E6ECF9&#39;&gt;同时训练&lt;span 
lang=EN-US&gt;G&lt;/span&gt;和&lt;span
lang=EN-US&gt;D &lt;/span&gt;：我们调整&lt;span lang=EN-US&gt;G&lt;/span&gt;的参数以
最小化&lt;span lang=EN-US&gt;log(1
&lt;/span&gt;–&lt;span lang=EN-US&gt; D(G(z))&lt;/span&gt;并调整&lt;span lang=EN-
US&gt;D&lt;/span&gt;的参数以最小化&lt;span
class=SpellE&gt;&lt;span lang=EN-US&gt;logD&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-
US&gt;(X) &lt;/span&gt;，如同它们跟随&lt;span
lang=EN-US&gt;- &lt;/span&gt;具有值函数&lt;span lang=EN-US&gt;V(G&lt;/span&gt;，
&lt;span lang=EN-US&gt;D)&lt;/span&gt;的双人最小&lt;span
lang=EN-US&gt; - &lt;/span&gt;&lt;span style=&#39;color:red&#39;&gt;最大游戏
（&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN
style=&#39;mso-ansi-language:EN&#39;&gt;two-player min-max 
game&lt;/span&gt;&lt;span
style=&#39;color:red;background:#E6ECF9&#39;&gt;）：&lt;/span&gt;&lt;span lang=EN 
style=&#39;mso-ansi-language:
EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S3.SS1.p4&gt;

&lt;div&gt;

&lt;table class=MsoNormalTable border=0 cellpadding=0 style=&#39;mso-
cellspacing:1.5pt;
 mso-yfti-tbllook:1184;mso-padding-alt:0cm 5.4pt 0cm 5.4pt&#39;&gt;
 &lt;tr style=&#39;mso-yfti-irow:0;mso-yfti-firstrow:yes;mso-yfti-
lastrow:yes&#39;&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;&lt;/td&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;&lt;span 
id=S3.E1.m1&gt;&lt;span aria-label=&#34; \min_{G}\max_{D}V(D,G)=\mathbb
{E}_{\bm{x}\sim p_{\text{data}}(\bm{x})}[\log D(%&amp;#13;&amp;#10;\bm
{x})]+\mathbb{E}_{\bm{z}\sim p_{z}(\bm{z})}[\log(1-D(G(\bm
{z})))]. &#34;&gt;
  &lt;p class=MsoNormal&gt;&lt;span class=SpellE&gt;&lt;span aria-
hidden=true&gt;&lt;span
  class=mjx-char1&gt;&lt;span lang=EN-US style=&#39;border:none 
windowtext 1.0pt;
  mso-border-alt:none windowtext 
0cm;padding:0cm&#39;&gt;min&lt;/span&gt;&lt;/span&gt;&lt;span
  class=mjx-char1&gt;&lt;span lang=EN-US style=&#39;font-
size:8.5pt;border:none windowtext 1.0pt;
  mso-border-alt:none windowtext 0cm;padding:0cm&#39;&gt;G&lt;/span&gt;&lt;span 
lang=EN-US
  style=&#39;border:none windowtext 1.0pt;mso-border-alt:none 
windowtext 0cm;
  padding:0cm&#39;&gt;max&lt;/span&gt;&lt;/span&gt;&lt;span class=mjx-char1&gt;&lt;span 
lang=EN-US
  style=&#39;font-size:8.5pt;border:none windowtext 1.0pt;mso-
border-alt:none windowtext 0cm;
  padding:0cm&#39;&gt;D&lt;/span&gt;&lt;span lang=EN-US style=&#39;border:none 
windowtext 1.0pt;
  mso-border-alt:none windowtext 
0cm;padding:0cm&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
  class=mjx-char1&gt;&lt;span lang=EN-US style=&#39;border:none 
windowtext 1.0pt;
  mso-border-alt:none windowtext 0cm;padding:0cm&#39;&gt;(D,G)=&lt;span 
class=SpellE&gt;E&lt;span
  style=&#39;vertical-align:-.275em&#39;&gt;&lt;span style=&#39;font-
size:8.5pt&#39;&gt;x&lt;/span&gt;&lt;span
  style=&#39;font-size:8.5pt;font-family:&#34;Cambria 
Math&#34;,&#34;serif&#34;;mso-bidi-font-family:
  &#34;Cambria Math&#34;&#39;&gt;∼&lt;/span&gt;&lt;span style=&#39;font-
size:8.5pt&#39;&gt;pdata&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
  class=mjx-char1&gt;&lt;span lang=EN-US style=&#39;font-
size:8.5pt;border:none windowtext 1.0pt;
  mso-border-alt:none windowtext 0cm;padding:0cm&#39;&gt;(x)
&lt;/span&gt;&lt;span lang=EN-US
  style=&#39;border:none windowtext 1.0pt;mso-border-alt:none 
windowtext 0cm;
  padding:0cm&#39;&gt;[&lt;span class=SpellE&gt;logD&lt;/span&gt;(x)]+&lt;span 
class=SpellE&gt;E&lt;span
  style=&#39;vertical-align:-.275em&#39;&gt;&lt;span style=&#39;font-
size:8.5pt&#39;&gt;z&lt;/span&gt;&lt;span
  style=&#39;font-size:8.5pt;font-family:&#34;Cambria 
Math&#34;,&#34;serif&#34;;mso-bidi-font-family:
  &#34;Cambria Math&#34;&#39;&gt;∼&lt;/span&gt;&lt;span style=&#39;font-
size:8.5pt&#39;&gt;pz&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
  class=mjx-char1&gt;&lt;span lang=EN-US style=&#39;font-
size:8.5pt;border:none windowtext 1.0pt;
  mso-border-alt:none windowtext 0cm;padding:0cm&#39;&gt;(z)
&lt;/span&gt;&lt;span lang=EN-US
  style=&#39;border:none windowtext 1.0pt;mso-border-alt:none 
windowtext 0cm;
  padding:0cm&#39;&gt;[log(1&lt;/span&gt;&lt;/span&gt;&lt;span class=mjx-char1&gt;&lt;span
  style=&#39;font-family:&#34;MS Mincho&#34;;mso-bidi-font-family:&#34;MS 
Mincho&#34;;border:none windowtext 1.0pt;
  mso-border-alt:none windowtext 0cm;padding:0cm&#39;&gt;−&lt;/span&gt;&lt;span 
lang=EN-US
  style=&#39;border:none windowtext 1.0pt;mso-border-alt:none 
windowtext 0cm;
  padding:0cm&#39;&gt;D(G(z)))].&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-
US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:10.0pt;font-family:&#34;Times New 
Roman&#34;,&#34;serif&#34;;mso-fareast-font-family:
  宋体;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-
bidi-language:AR-SA&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;/td&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;
  &lt;p class=MsoNormal&gt;&lt;span class=ltxtag&gt;&lt;span lang=EN-US&gt;(1)
&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/section&gt;&lt;section class=&#34;ltx_subsection&#34; id=&#34;S3.SS2&#34;&gt;&lt;/div&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto;
mso-outline-level:3&#39;&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-
size:13.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto;
mso-outline-level:3&#39;&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-
size:13.5pt&#39;&gt;3.2&lt;/span&gt;&lt;/b&gt;&lt;b&gt;&lt;span
style=&#39;font-size:13.5pt&#39;&gt;有条件的对抗网&lt;span lang=EN-
US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div id=S3.SS2.p1&gt;

&lt;p class=ltxp&gt;&lt;span style=&#39;background:#E6ECF9&#39;&gt;如果生成器和鉴别
器都以某些额外信息&lt;span
lang=EN-US&gt;y&lt;/span&gt;为条件，则生成对抗网可以扩展到条件模型。
&lt;/span&gt;&lt;span lang=EN-US&gt; y&lt;/span&gt;可以是任何类型的辅助信息，例如
类标签或来自其他模态的数据。
我们可以通过将&lt;span lang=EN-US&gt;y&lt;/span&gt;作为附加输入层馈入鉴别器
和生成器来执行调节&lt;span lang=EN
style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S3.SS2.p2&gt;

&lt;p class=ltxp&gt;在生成器中，先验噪声输入&lt;span class=SpellE&gt;&lt;span 
lang=EN-US&gt;p&lt;/span&gt;&lt;span
lang=EN-US style=&#39;font-size:8.5pt&#39;&gt;z&lt;/span&gt;&lt;/span&gt;&lt;span 
lang=EN-US&gt;(z)&lt;/span&gt;和&lt;span
lang=EN-US&gt;y&lt;/span&gt;在联合隐藏表示中被组合，并且对抗训练框架允许
在如何组成该隐藏表示时具有相当大的灵活性。 &lt;sup&gt;&lt;span
lang=EN-US&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;span lang=EN style=&#39;mso-ansi-
language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span class=ltxnote&gt;&lt;sup&gt;&lt;span lang=EN 
style=&#39;mso-ansi-language:
EN&#39;&gt;---------------------------------------------------------
&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span class=ltxnotecontent&gt;&lt;sup&gt;&lt;span lang=EN-
US&gt;1&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;现在我们只需要将条件输入和先验噪声作为&lt;span 
lang=EN-US&gt;MLP&lt;/span&gt;的单个隐藏层的输入，但是可以想象使用更高阶
的交互允许复杂的生成机制，这种机制在传统的生成框架中非常难以使用
。&lt;/span&gt;&lt;span
class=ltxnote&gt;&lt;sup&gt;&lt;span lang=EN style=&#39;mso-ansi-
language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/sup&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S3.SS2.p3&gt;

&lt;p class=ltxp&gt;&lt;span lang=EN-US 
style=&#39;color:red&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span style=&#39;color:red&#39;&gt;在鉴别器中，&lt;span 
lang=EN-US&gt; x&lt;/span&gt;和&lt;span
lang=EN-US&gt;y&lt;/span&gt;被表示为输入和判别函数（在这种情况下由&lt;span 
lang=EN-US&gt;MLP&lt;/span&gt;再次体现）&lt;/span&gt;。&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S3.SS2.p4&gt;

&lt;p class=ltxp&gt;&lt;span lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;The 
objective function
of a two-player minimax game would be as &lt;span 
class=SpellE&gt;Eq&lt;/span&gt; &lt;a
href=&#34;#S3.E2&#34; target=&#34;_blank&#34;
title=&#34;(2) ‣ 3.2 Conditional Adversarial Nets ‣ 3 Conditional 
Adversarial Nets ‣ Conditional Generative Adversarial 
Nets&#34;&gt;&lt;span
class=ltxtext&gt;2&lt;/span&gt;&lt;/a&gt; &lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;&lt;span 
style=&#39;background:#E6ECF9&#39;&gt;双人&lt;span
style=&#39;color:red&#39;&gt;迷你极限游戏&lt;/span&gt;的目标函数将是&lt;span 
class=SpellE&gt;&lt;span lang=EN-US&gt;Eq&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;（2）‣3.2有条件的对抗网‣3条件性对抗网‣条
件生成对抗网&#34;&gt;&lt;span 
class=ltxtext&gt;2&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  $$\min_{G}\max_{D}V(D,G)=\mathbb{E}_{{x}\sim p_{\text{data}}({x})}[\log D({x}|{y})]+\mathbb{E}_{{z}\sim p_{z}({z})}[\log(1-D(G({z}|{y})))]$$                   (2)

&lt;p&gt;
---------------------------------------
&lt;hr color=&#39;red&#39;&gt;

&lt;div&gt;

&lt;table class=MsoNormalTable border=0 cellpadding=0 style=&#39;mso-
cellspacing:1.5pt;
 mso-yfti-tbllook:1184;mso-padding-alt:0cm 5.4pt 0cm 5.4pt&#39; 
id=S3.E2&gt;
&lt;tr style=&#39;mso-yfti-irow:0;mso-yfti-firstrow:yes;mso-yfti-
lastrow:yes&#39;&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;&lt;/td&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;$$\min_{G}\max_{D}V(D,G)=\mathbb{E}_{{x}\sim p_{\text{data}}({x})}[\log D({x}|{y})]+\mathbb{E}_{{z}\sim p_{z}({z})}[\log(1-D(G({z}|{y})))]$$ &lt;/td&gt;
&lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:0;mso-yfti-firstrow:yes;mso-yfti-
lastrow:yes&#39;&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;&lt;/td&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;&lt;span 
id=S3.E2.m1&gt;&lt;span aria-label=&#34;$$\min_{G}\max_{D}V(D,G)=\mathbb{E}_{{x}\sim p_{\text{data}}({x})}[\log D({x}|{y})]+\mathbb{E}_{{z}\sim p_{z}({z})}[\log(1-D(G({z}|{y})))]$$      (2test) &#34;&gt;

$$\min_{G}\max_{D}V(D,G)=\mathbb{E}_{{x}\sim p_{\text{data}}({x})}[\log D({x}|{y})]+\mathbb{E}_{{z}\sim p_{z}({z})}[\log(1-D(G({z}|{y})))]  $$ test2

  &lt;p class=MsoNormal&gt;&lt;span class=SpellE&gt;&lt;span aria-
hidden=true&gt;&lt;span
  class=mjx-char1&gt;&lt;span lang=EN-US style=&#39;border:none windowtext 1.0pt;
  mso-border-alt:none windowtext  0cm;padding:0cm&#39;&gt;min&lt;/span&gt;&lt;/span&gt;&lt;span
  class=mjx-char1&gt;&lt;span lang=EN-US style=&#39;font-
size:8.5pt;border:none windowtext 1.0pt;
  mso-border-alt:none windowtext 0cm;padding:0cm&#39;&gt;G&lt;/span&gt;&lt;span 
lang=EN-US
  style=&#39;border:none windowtext 1.0pt;mso-border-alt:none 
windowtext 0cm;
  padding:0cm&#39;&gt;max&lt;/span&gt;&lt;/span&gt;&lt;span class=mjx-char1&gt;&lt;span 
lang=EN-US
  style=&#39;font-size:8.5pt;border:none windowtext 1.0pt;mso-
border-alt:none windowtext 0cm;
  padding:0cm&#39;&gt;D&lt;/span&gt;&lt;span lang=EN-US style=&#39;border:none 
windowtext 1.0pt;
  mso-border-alt:none windowtext 
0cm;padding:0cm&#39;&gt;V&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
  class=mjx-char1&gt;&lt;span lang=EN-US style=&#39;border:none 
windowtext 1.0pt;
  mso-border-alt:none windowtext 0cm;padding:0cm&#39;&gt;(D,G)=&lt;span 
class=SpellE&gt;E&lt;span
  style=&#39;vertical-align:-.275em&#39;&gt;&lt;span style=&#39;font-
size:8.5pt&#39;&gt;x&lt;/span&gt;&lt;span
  style=&#39;font-size:8.5pt;font-family:&#34;Cambria 
Math&#34;,&#34;serif&#34;;mso-bidi-font-family:
  &#34;Cambria Math&#34;&#39;&gt;∼&lt;/span&gt;&lt;span style=&#39;font-
size:8.5pt&#39;&gt;pdata&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
  class=mjx-char1&gt;&lt;span lang=EN-US style=&#39;font-
size:8.5pt;border:none windowtext 1.0pt;
  mso-border-alt:none windowtext 0cm;padding:0cm&#39;&gt;(x)
&lt;/span&gt;&lt;span lang=EN-US
  style=&#39;border:none windowtext 1.0pt;mso-border-alt:none 
windowtext 0cm;
  padding:0cm&#39;&gt;[&lt;span class=SpellE&gt;logD&lt;/span&gt;(&lt;span 
class=SpellE&gt;x|y&lt;/span&gt;)]+&lt;span
  class=SpellE&gt;E&lt;span style=&#39;vertical-align:-.275em&#39;&gt;&lt;span 
style=&#39;font-size:
  8.5pt&#39;&gt;z&lt;/span&gt;&lt;span style=&#39;font-size:8.5pt;font-
family:&#34;Cambria Math&#34;,&#34;serif&#34;;
  mso-bidi-font-family:&#34;Cambria Math&#34;&#39;&gt;∼&lt;/span&gt;&lt;span 
style=&#39;font-
size:8.5pt&#39;&gt;pz&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
  class=mjx-char1&gt;&lt;span lang=EN-US style=&#39;font-
size:8.5pt;border:none windowtext 1.0pt;
  mso-border-alt:none windowtext 0cm;padding:0cm&#39;&gt;(z)
&lt;/span&gt;&lt;span lang=EN-US
  style=&#39;border:none windowtext 1.0pt;mso-border-alt:none 
windowtext 0cm;
  padding:0cm&#39;&gt;[log(1&lt;/span&gt;&lt;/span&gt;&lt;span class=mjx-char1&gt;&lt;span
  style=&#39;font-family:&#34;MS Mincho&#34;;mso-bidi-font-family:&#34;MS 
Mincho&#34;;border:none windowtext 1.0pt;
  mso-border-alt:none windowtext 0cm;padding:0cm&#39;&gt;−&lt;/span&gt;&lt;span 
lang=EN-US
  style=&#39;border:none windowtext 1.0pt;mso-border-alt:none 
windowtext 0cm;
  padding:0cm&#39;&gt;D(G(&lt;span class=SpellE&gt;z|
y&lt;/span&gt;)))].&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
  lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;&lt;span lang=EN-US
  style=&#39;font-size:10.0pt;font-family:&#34;Times New 
Roman&#34;,&#34;serif&#34;;mso-fareast-font-family:
  宋体;mso-ansi-language:EN-US;mso-fareast-language:ZH-CN;mso-
bidi-language:AR-SA&#39;&gt;&lt;/span&gt;&lt;/span&gt;&lt;/td&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;
  &lt;p class=MsoNormal&gt;&lt;span class=ltxtag&gt;&lt;span lang=EN-US&gt;(2)
&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;/div&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;div id=S3.SS2.p5&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;&lt;span lang=EN-US 
style=&#39;background:#E6ECF9&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;&lt;span 
style=&#39;background:#E6ECF9&#39;&gt;图&lt;span
lang=EN-US&gt;&lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;图1‣3.2有条件的对抗网‣3条件性对抗网‣条件
生成对抗网&#34;&gt;&lt;span class=ltxtext&gt;1&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;展示了一种简
单条件对抗网的结构。&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;&lt;figure class=&#34;ltx_figure&#34; 
id=&#34;S3.F1&#34;&gt;&lt;span
style=&#39;mso-no-proof:yes&#39;&gt;![figure1](x1.png)&lt;/span&gt;&lt;/span&gt;&lt;span
class=ltxtag&gt;图&lt;span lang=EN-US&gt;1&lt;/span&gt;：&lt;/span&gt;&lt;span 
class=notranslate&gt; &lt;/span&gt;&lt;span
class=ltxtext&gt;&lt;span style=&#39;font-size:11.0pt&#39;&gt;条件对抗网
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN
style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto;
mso-outline-level:2&#39;&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-
size:18.0pt&#39;&gt;4&lt;/span&gt;&lt;/b&gt;&lt;b&gt;&lt;span
style=&#39;font-size:18.0pt&#39;&gt;实验结果&lt;/span&gt;&lt;/b&gt;&lt;span lang=EN 
style=&#39;mso-ansi-language:
EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;h3&gt;&lt;span class=ltxtag&gt;&lt;section class=&#34;ltx_subsection&#34; 
id=&#34;S4.SS1&#34;&gt;&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;4.1 &lt;/span&gt;&lt;/span&gt;&lt;span 
lang=EN
style=&#39;mso-ansi-language:EN&#39;&gt;Unimodal&lt;/span&gt;&lt;span style=&#39;mso-
ansi-language:
EN&#39;&gt;（&lt;/span&gt;&lt;span style=&#39;font-weight:normal&#39;&gt;单模态，只有一个
峰的分布 &lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:EN&#39;&gt;）&lt;span 
lang=EN&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/span&gt;&lt;/h3&gt;

&lt;div id=S4.SS1.p1&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto&#39;&gt;我们在&lt;span
lang=EN-US&gt;MNIST&lt;/span&gt;图像上训练了条件对抗网，这些图像以其类标
签为条件，编码为&lt;span lang=EN-US&gt;one-hot&lt;/span&gt;矢量。&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S4.SS1.p2&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto&#39;&gt;在生成器网中，从单位超立方体内的均匀分布中抽样
到具有维数&lt;span
lang=EN-US&gt;100&lt;/span&gt;的噪声先验&lt;span lang=EN-US&gt;z &lt;/span&gt;。
&lt;span lang=EN-US&gt; z&lt;/span&gt;和&lt;span
lang=EN-US&gt;y&lt;/span&gt;都被映射到具有整流线性单元（&lt;span 
class=SpellE&gt;&lt;span lang=EN-US&gt;ReLu&lt;/span&gt;&lt;/span&gt;）激活&lt;i&gt;&lt;span
lang=EN-US&gt;[&lt;/span&gt;&lt;/i&gt;&lt;span lang=EN-US&gt; 4,11 &lt;i&gt;]
&lt;/i&gt;&lt;/span&gt;&lt;i&gt;的&lt;/i&gt;隐藏层，分别具有层大小&lt;span
lang=EN-US&gt;200&lt;/span&gt;和&lt;span lang=EN-US&gt;1000&lt;/span&gt;，然后被映射
到第二层， 该层为维度&lt;span
lang=EN-US&gt;1200&lt;/span&gt;的&lt;span class=SpellE&gt;&lt;span lang=EN-
US&gt;ReLu&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;组合隐藏层。然后我们有一个最终的，生成&lt;span 
lang=EN-US&gt;784&lt;/span&gt;维&lt;span
lang=EN-US&gt;MNIST&lt;/span&gt;样本的&lt;span lang=EN-US&gt; sigmoid&lt;/span&gt;单
元层作为输出。 &lt;/p&gt;

&lt;/div&gt;

&lt;div id=S4.SS1.p3&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto&#39;&gt;鉴别器将&lt;span
lang=EN-US&gt;x&lt;/span&gt;映射到具有&lt;span lang=EN-US&gt;240&lt;/span&gt;个单元
和&lt;span lang=EN-US&gt;5&lt;/span&gt;&lt;span
style=&#39;color:red&#39;&gt;片&lt;/span&gt;的&lt;span class=SpellE&gt;&lt;span lang=EN-
US&gt;maxout&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; &lt;i&gt;[ &lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span style=&#39;font-
size:11.0pt&#39;&gt;6&lt;/span&gt;&lt;/a&gt; ]&lt;/i&gt;&lt;/span&gt;层，并且&lt;span
lang=EN-US&gt;y&lt;/span&gt;映射到具有&lt;span lang=EN-US&gt;50&lt;/span&gt;个单元和
&lt;span lang=EN-US&gt;5&lt;/span&gt;片的&lt;span
class=SpellE&gt;&lt;span lang=EN-US&gt;maxout&lt;/span&gt;&lt;/span&gt;层。 两个隐藏
层在被馈送到&lt;span
lang=EN-US&gt;sigmoid&lt;/span&gt;层之前， 映射到具有&lt;span lang=EN-
US&gt;240&lt;/span&gt;个单元和&lt;span
lang=EN-US&gt;4&lt;/span&gt;片 联合的&lt;span lang=EN-US&gt; &lt;span 
class=SpellE&gt;maxout&lt;/span&gt;&lt;/span&gt;层。
（鉴别器的精确架构并不重要，只要它具有足够的&lt;span 
style=&#39;color:red&#39;&gt;功率&lt;/span&gt;&lt;span lang=EN-US&gt;;&lt;/span&gt;我们发现
&lt;span
class=SpellE&gt;&lt;span lang=EN-US&gt;maxout&lt;/span&gt;&lt;/span&gt;单元通常非常
适合该任务。）&lt;span lang=EN
style=&#39;mso-ansi-language:EN&#39;&gt;Both of the hidden layers mapped 
to a joint &lt;span
class=SpellE&gt;maxout&lt;/span&gt; layer with 240 units and 4 pieces 
before being fed
to the sigmoid layer. (The precise architecture of the 
discriminator is not critical
as long as it has sufficient &lt;span 
style=&#39;color:red&#39;&gt;power&lt;/span&gt;;)&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S4.SS1.p4&gt;

&lt;p class=ltxp style=&#39;text-align:justify;text-justify:inter-
ideograph&#39;&gt;&lt;span
style=&#39;background:#E6ECF9&#39;&gt;该模型采用随机梯度下降训练，小批量为
&lt;span lang=EN-US&gt;100&lt;/span&gt;，初始学习率为&lt;span
lang=EN-US&gt;0.1 &lt;/span&gt;，指数下降至&lt;span lang=EN-US&gt;.000001 
&lt;/span&gt;，衰减系数为&lt;span
lang=EN-US&gt;1.00004 &lt;/span&gt;。&lt;/span&gt; 还使用动量，初始值为&lt;span 
lang=EN-US&gt;.5 &lt;/span&gt;，增加到&lt;span
lang=EN-US&gt;0.7 &lt;/span&gt;。 以概率为&lt;span lang=EN-US&gt;0.5&lt;/span&gt;的
&lt;span lang=EN-US&gt;dropout&lt;i&gt;[
&lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span style=&#39;font-
size:11.0pt&#39;&gt;9&lt;/span&gt;&lt;/a&gt; ]&lt;/i&gt;&lt;/span&gt;应用于&lt;u&gt;生成器&lt;/u&gt;和鉴别
器。
并且验证集上的对数似然的最佳估计被用作停止点。&lt;span lang=EN 
style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S4.SS1.p5&gt;

&lt;p class=ltxp&gt;&lt;span lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;Table 
&lt;a href=&#34;#S4.T1&#34;
target=&#34;_blank&#34;
title=&#34;Table 1 ‣ 4.1 Unimodal ‣ 4 Experimental Results ‣ 
Conditional Generative Adversarial Nets&#34;&gt;&lt;span
class=ltxtext&gt;1&lt;/span&gt;&lt;/a&gt; shows Gaussian &lt;span 
class=SpellE&gt;Parzen&lt;/span&gt;
window log-likelihood estimate for the MNIST dataset test data. 
1000 samples
were&lt;span style=&#39;color:red&#39;&gt; drawn from each 10 class and a 
Gaussian &lt;span
class=SpellE&gt;Parzen&lt;/span&gt; window was fitted to these samples. 
We then estimate
the log-likelihood of the test set using the &lt;span 
class=SpellE&gt;Parzen&lt;/span&gt;
window distribution.&lt;/span&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S4.SS1.p6&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto&#39;&gt;表&lt;span
lang=EN-US&gt;&lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;表1‣4.1单峰‣4实验结果‣条件生成性对抗
网&#34;&gt;1&lt;/a&gt;&lt;/span&gt;示出了&lt;span
lang=EN-US&gt;MNIST&lt;/span&gt;测试数据集的高斯&lt;span class=SpellE&gt;&lt;span 
lang=EN-US&gt;Parzen&lt;/span&gt;&lt;/span&gt;窗口对数似然估计。
从每&lt;span lang=EN-US&gt;10&lt;/span&gt;类中抽取&lt;span lang=EN-
US&gt;1000&lt;/span&gt;个样品，并将高这些样本拟合到高斯&lt;span
class=SpellE&gt;&lt;span lang=EN-US&gt;Parzen&lt;/span&gt;&lt;/span&gt;窗口上。 然后
，我们使用&lt;span
class=SpellE&gt;&lt;span lang=EN-US&gt;Parzen&lt;/span&gt;&lt;/span&gt;窗口分布估计
测试集的对数似然。 （有关如何构建此估计的更多详细信息，请参见
&lt;i&gt;&lt;span
lang=EN-US&gt;[ &lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span style=&#39;font-
size:11.0pt&#39;&gt;8&lt;/span&gt;&lt;/a&gt; ]&lt;/span&gt;&lt;/i&gt;&lt;span
lang=EN-US&gt; &lt;/span&gt;。） &lt;/p&gt;

&lt;/div&gt;

&lt;div id=S4.SS1.p7&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto&#39;&gt;我们提出的条件性对抗净结果与其他一些基于网络的
结果相当，但是其他几种方法（包括非条件对抗网）的表现都优于我们的
方法。
我们将这些结果更多地作为概念验证而不是效力的证明，并且相信通过进
一步探索超参数空间和架构，条件模型应该匹配或超过非条件结果。 
&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto&#39;&gt;图&lt;span
lang=EN-US&gt;&lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;图2‣4.1单峰‣4实验结果‣条件生成性对抗
网&#34;&gt;2&lt;/a&gt;&lt;/span&gt;显示了一些生成的样本。 每行以一个标签为条件，每
列是不同的生成样本。
&lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;figure class=&#34;ltx_table&#34; id=&#34;S4.T1&#34;&gt;&lt;/p&gt;

&lt;table class=MsoNormalTable border=0 cellpadding=0 style=&#39;mso-
cellspacing:1.5pt;
 mso-yfti-tbllook:1184;mso-padding-alt:0cm 5.4pt 0cm 5.4pt&#39;&gt;
 &lt;thead&gt;
  &lt;tr style=&#39;mso-yfti-irow:0;mso-yfti-firstrow:yes&#39;&gt;
   &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;
   &lt;p class=MsoNormal align=center style=&#39;text-
align:center&#39;&gt;&lt;b&gt;&lt;span
   lang=EN-US&gt;Model&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;
   &lt;/td&gt;
   &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;
   &lt;p class=MsoNormal align=center style=&#39;text-
align:center&#39;&gt;&lt;b&gt;&lt;span
   lang=EN-US&gt;MNIST&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;
   &lt;/td&gt;
  &lt;/tr&gt;
 &lt;/thead&gt;
 &lt;tr style=&#39;mso-yfti-irow:1&#39;&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-
align:center&#39;&gt;&lt;b&gt;&lt;span
  lang=EN-US&gt;DBN&amp;nbsp;&lt;cite tabindex=0&gt;&lt;span style=&#39;font-
family:宋体;mso-bidi-font-family:
  宋体&#39;&gt;[&lt;a href=&#34;#bib.bib1&#34; target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span 
class=ltxtext&gt;&lt;span
  style=&#39;font-size:11.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;]&lt;/span&gt;&lt;/cite&gt; 
&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;&lt;span 
id=S4.T1.m1&gt;&lt;span aria-label=&#34;138\pm 2&#34;&gt;
  &lt;p class=MsoNormal&gt;&lt;span class=mjx-char1&gt;&lt;span aria-
hidden=true&gt;&lt;span
  lang=EN-US style=&#39;border:none windowtext 1.0pt;mso-border-
alt:none windowtext 0cm;
  padding:0cm&#39;&gt;138&lt;/span&gt;&lt;span style=&#39;border:none windowtext 
1.0pt;mso-border-alt:
  none windowtext 0cm;padding:0cm&#39;&gt;±&lt;span lang=EN-
US&gt;2&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
  lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:2&#39;&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-
align:center&#39;&gt;&lt;b&gt;&lt;span
  lang=EN-US&gt;Stacked CAE&amp;nbsp;&lt;cite tabindex=0&gt;&lt;span 
style=&#39;font-family:宋体;
  mso-bidi-font-family:宋体&#39;&gt;[&lt;a href=&#34;#bib.bib1&#34; 
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span
  class=ltxtext&gt;&lt;span style=&#39;font-
size:11.0pt&#39;&gt;1&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;]&lt;/span&gt;&lt;/cite&gt;
  &lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;&lt;span 
id=S4.T1.m2&gt;&lt;span aria-label=&#34;121\pm 1.6&#34;&gt;
  &lt;p class=MsoNormal&gt;&lt;span class=mjx-char1&gt;&lt;span aria-
hidden=true&gt;&lt;span
  lang=EN-US style=&#39;border:none windowtext 1.0pt;mso-border-
alt:none windowtext 0cm;
  padding:0cm&#39;&gt;121&lt;/span&gt;&lt;span style=&#39;border:none windowtext 
1.0pt;mso-border-alt:
  none windowtext 0cm;padding:0cm&#39;&gt;±&lt;span lang=EN-
US&gt;1.6&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
  lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:3&#39;&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-
align:center&#39;&gt;&lt;b&gt;&lt;span
  lang=EN-US&gt;Deep GSN&amp;nbsp;&lt;cite tabindex=0&gt;&lt;span style=&#39;font-
family:宋体;
  mso-bidi-font-family:宋体&#39;&gt;[&lt;a href=&#34;#bib.bib2&#34; 
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span
  class=ltxtext&gt;&lt;span style=&#39;font-
size:11.0pt&#39;&gt;2&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;]&lt;/span&gt;&lt;/cite&gt;
  &lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;&lt;span 
id=S4.T1.m3&gt;&lt;span aria-label=&#34;214\pm 1.1&#34;&gt;
  &lt;p class=MsoNormal&gt;&lt;span class=mjx-char1&gt;&lt;span aria-
hidden=true&gt;&lt;span
  lang=EN-US style=&#39;border:none windowtext 1.0pt;mso-border-
alt:none windowtext 0cm;
  padding:0cm&#39;&gt;214&lt;/span&gt;&lt;span style=&#39;border:none windowtext 
1.0pt;mso-border-alt:
  none windowtext 0cm;padding:0cm&#39;&gt;±&lt;span lang=EN-
US&gt;1.1&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
  lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:4&#39;&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-
align:center&#39;&gt;&lt;b&gt;&lt;span
  lang=EN-US&gt;Adversarial nets&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;&lt;span 
id=S4.T1.m4&gt;&lt;span aria-label=&#34;225\pm 2&#34;&gt;
  &lt;p class=MsoNormal&gt;&lt;span class=mjx-char1&gt;&lt;span aria-
hidden=true&gt;&lt;span
  lang=EN-US style=&#39;border:none windowtext 1.0pt;mso-border-
alt:none windowtext 0cm;
  padding:0cm&#39;&gt;225&lt;/span&gt;&lt;span style=&#39;border:none windowtext 
1.0pt;mso-border-alt:
  none windowtext 0cm;padding:0cm&#39;&gt;±&lt;span lang=EN-
US&gt;2&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
  lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:5;mso-yfti-lastrow:yes&#39;&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;
  &lt;p class=MsoNormal align=center style=&#39;text-
align:center&#39;&gt;&lt;b&gt;&lt;span
  lang=EN-US&gt;Conditional adversarial 
nets&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;&lt;span 
id=S4.T1.m5&gt;&lt;span aria-label=&#34;132\pm 1.8&#34;&gt;
  &lt;p class=MsoNormal&gt;&lt;span class=mjx-char1&gt;&lt;span aria-
hidden=true&gt;&lt;span
  lang=EN-US style=&#39;border:none windowtext 1.0pt;mso-border-
alt:none windowtext 0cm;
  padding:0cm&#39;&gt;132&lt;/span&gt;&lt;span style=&#39;border:none windowtext 
1.0pt;mso-border-alt:
  none windowtext 0cm;padding:0cm&#39;&gt;±&lt;span lang=EN-
US&gt;1.8&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
  lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;p class=MsoNormal&gt;&lt;span class=ltxtag&gt;&lt;figcaption 
class=&#34;ltx_caption ltx_centering&#34;&gt;&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;Table 1: 
&lt;/span&gt;&lt;/span&gt;&lt;span class=SpellE&gt;&lt;span
class=ltxtext&gt;&lt;span lang=EN style=&#39;font-size:11.0pt;mso-ansi-
language:EN&#39;&gt;Parzen&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=ltxtext&gt;&lt;span lang=EN style=&#39;font-size:11.0pt;mso-ansi-
language:EN&#39;&gt; window-based
log-likelihood estimates for MNIST. &lt;/span&gt;&lt;/span&gt;&lt;span 
class=ltxtext&gt;&lt;span
style=&#39;font-size:11.0pt;mso-ansi-language:EN&#39;&gt;我们遵循像
&lt;/span&gt;&lt;/span&gt;&lt;cite&gt;&lt;span
lang=EN style=&#39;font-size:11.0pt;font-family:宋体;mso-bidi-
font-family:宋体;
mso-ansi-language:EN&#39;&gt;[&lt;a href=&#34;#bib.bib8&#34; target=&#34;_blank&#34; 
title=&#34;&#34;&gt;&lt;span
class=ltxtext&gt;&lt;span style=&#39;font-
size:10.0pt&#39;&gt;8&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;]&lt;/span&gt;&lt;/cite&gt;&lt;cite&gt;&lt;span
style=&#39;font-size:11.0pt;font-family:宋体;mso-bidi-font-family:
宋体;mso-ansi-language:
EN&#39;&gt;一样的程序来计算这些值&lt;/span&gt;&lt;/cite&gt;&lt;span 
class=ltxtext&gt;&lt;span lang=EN
style=&#39;font-size:11.0pt;mso-ansi-
language:EN&#39;&gt;.&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN
style=&#39;mso-ansi-language:EN&#39;&gt;&lt;/figcaption&gt; &lt;/span&gt;&lt;span 
lang=EN-US&gt;&lt;/figure&gt;&lt;figure class=&#34;ltx_figure&#34; id=&#34;S4.F2&#34;&gt;&lt;span
style=&#39;mso-no-proof:yes&#39;&gt;![mnist.png](mnist.png)&lt;/span&gt;&lt;/span&gt;&lt;span
class=ltxtag&gt;&lt;span lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;Figure 
2: &lt;/span&gt;&lt;/span&gt;&lt;span
class=ltxtext&gt;&lt;span style=&#39;font-size:11.0pt;mso-ansi-
language:EN&#39;&gt;生成的&lt;span
lang=EN&gt;MNIST&lt;/span&gt;数字&lt;span lang=EN&gt;, &lt;/span&gt;每一行 以一个标
签为条件&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:EN&#39;&gt; &lt;span 
lang=EN&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto;
mso-outline-level:3&#39;&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-
size:13.5pt&#39;&gt;&lt;/figure&gt;&lt;/section&gt;&lt;section class=&#34;ltx_subsection&#34; 
id=&#34;S4.SS2&#34;&gt;4.2
Multimodal&lt;/span&gt;&lt;/b&gt;&lt;b&gt;&lt;span style=&#39;font-size:13.5pt&#39;&gt;多模态数
据 （多峰分布）&lt;span
lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto;
mso-outline-level:3&#39;&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-
size:13.5pt&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div id=S4.SS2.p2&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;&lt;span 
style=&#39;background:#E6ECF9&#39;&gt;诸如&lt;span
lang=EN-US&gt;Flickr&lt;/span&gt;之类的照片网站是图像形式的标记数据及其相
关的用户生成元数据（&lt;span lang=EN-US&gt;UGM&lt;/span&gt;）的丰富来源
&lt;span
lang=EN-US&gt; - &lt;/span&gt;特别是用户标签。&lt;/span&gt;&lt;span lang=EN-
US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;用户生成的元数据与更多“典
型”图像标记方案的不同之处在于它们通常更具描述性，并且在语义上更
接近人类用自然语言描述图像的方式，而不仅仅是识别图像中存在的对象
。&lt;/span&gt;
&lt;span class=notranslate&gt;&lt;span onmouseover=&#34;_tipon(this)&#34; 
onmouseout=&#34;_tipoff()&#34;&gt;&lt;span
lang=EN-US&gt;UGM&lt;/span&gt;&lt;/span&gt;的另一个方面是&lt;span 
class=SpellE&gt;&lt;span lang=EN-US&gt;synoymy&lt;/span&gt;&lt;/span&gt;是普遍的，不
同的用户可能使用不同的词汇来描述相同的概念&lt;span
lang=EN-US&gt; - &lt;/span&gt;因此，有一种有效的方法来规范化这些标签变得
很重要。&lt;/span&gt; &lt;span class=notranslate&gt;&lt;span
onmouseover=&#34;_tipon(this)&#34; onmouseout=&#34;_tipoff()&#34;&gt;概念词嵌入
&lt;/span&gt;&lt;/span&gt;&lt;cite&gt;&lt;span
lang=EN-US style=&#39;font-family:宋体;mso-bidi-font-family:宋体&#39;&gt;[ 
&lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span class=ltxtext&gt;&lt;span 
style=&#39;font-size:11.0pt&#39;&gt;14&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;
]&lt;/span&gt;&lt;/cite&gt;&lt;span class=notranslate&gt;在这里非常有用，因为相关
概念最终由类似的向量表示。&lt;/span&gt;&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S4.SS2.p3&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;&lt;span 
style=&#39;background:#E6ECF9&#39;&gt;在本节中，我们演示了具有多标签预测的
图像的自动标记，使用条件对抗网络生成（可能是多模态的）标记向量分
布，条件是图像特征。&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S4.SS2.p4&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;&lt;span 
style=&#39;background:#E6ECF9&#39;&gt;对于图像特征，我们预先训练卷积模型，
类似于&lt;/span&gt;&lt;/span&gt;&lt;cite&gt;&lt;span
lang=EN-US style=&#39;font-family:宋体;mso-bidi-font-family:宋
体;background:#E6ECF9&#39;&gt;[ &lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span class=ltxtext&gt;&lt;span 
style=&#39;font-size:11.0pt&#39;&gt;13&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;
]&lt;/span&gt;&lt;/cite&gt;&lt;cite&gt;&lt;span style=&#39;font-family:宋体;mso-bidi-
font-family:宋体;
background:#E6ECF9&#39;&gt;中&lt;/span&gt;&lt;/cite&gt;&lt;span 
class=notranslate&gt;&lt;span
style=&#39;background:#E6ECF9&#39;&gt;的卷积模型，在有&lt;span lang=EN-
US&gt;21,000&lt;/span&gt;个标签&lt;/span&gt;&lt;/span&gt;&lt;cite&gt;&lt;span
lang=EN-US style=&#39;font-family:宋体;mso-bidi-font-family:宋
体;background:#E6ECF9&#39;&gt;[ &lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span class=ltxtext&gt;&lt;span 
style=&#39;font-size:11.0pt&#39;&gt;15&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;
]&lt;/span&gt;&lt;/cite&gt;&lt;cite&gt;&lt;span style=&#39;font-family:宋体;mso-bidi-
font-family:宋体;
background:#E6ECF9&#39;&gt;的 &lt;/span&gt;&lt;/cite&gt;&lt;span 
class=notranslate&gt;&lt;span
style=&#39;background:#E6ECF9&#39;&gt;完整的&lt;span lang=EN-
US&gt;ImageNet&lt;/span&gt;数据集上。&lt;/span&gt;&lt;/span&gt;
&lt;span class=notranslate&gt;&lt;span onmouseover=&#34;_tipon(this)&#34; 
onmouseout=&#34;_tipoff()&#34;&gt;我们使用最后一个完全连接层的输出，其中
&lt;span
lang=EN-US&gt;4096&lt;/span&gt;个单位作为图像表示。&lt;/span&gt;&lt;span 
lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S4.SS2.p5&gt;

&lt;p class=ltxp&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;&lt;span 
style=&#39;background:#E6ECF9&#39;&gt;对于表示性世界，我们首先从&lt;span
lang=EN-US&gt;YFCC100M &lt;span id=footnote2&gt;&lt;sup&gt;&lt;/span&gt;2&lt;/sup&gt; 
&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=ltxnotecontent&gt;&lt;sup&gt;&lt;span lang=EN-US 
style=&#39;background:#E6ECF9&#39;&gt;2&lt;/span&gt;&lt;/sup&gt;&lt;span
lang=EN-US style=&#39;background:#E6ECF9&#39;&gt; Yahoo Flickr Creative 
Common 100M &lt;a
href=&#34;&#34;
target=&#34;_blank&#34; 
title=&#34;&#34;&gt;http://webscope.sandbox.yahoo.com/catalog.php?
datatype=i&amp;amp;did&lt;/a&gt;&lt;/span&gt;&lt;/span&gt;&lt;span
class=notranslate&gt;&lt;span style=&#39;background:#E6ECF9&#39;&gt;收集用户标签
，标题和描述的串联文本集&lt;span
id=footnote2&gt;&lt;span lang=EN-US&gt;&lt;a
href=&#34;https://translate.googleusercontent.com/translate_c?
depth=1&amp;amp;rurl=translate.google.com.hk&amp;amp;sl=en&amp;amp;sp=nmt4&amp;
amp;tl=zh-
CN&amp;amp;u=http://webscope.sandbox.yahoo.com/catalog.php
%3Fdatatype%3Di%26did
%3D67&amp;amp;xid=17259,15700023,15700043,15700186,15700191,1570025
6,15700259&amp;amp;usg=ALkJrhiGKfWunSF5UFkAZ-_mOqMFiV75ZA&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span lang=EN-US&gt;&lt;span lang=EN-US&gt;。
&lt;/span&gt;&lt;/span&gt; = 67&lt;/a&gt;
&lt;/span&gt;&lt;/span&gt;。&lt;/span&gt;&lt;/span&gt; &lt;span class=notranslate&gt;&lt;span
onmouseover=&#34;_tipon(this)&#34; onmouseout=&#34;_tipoff()&#34;&gt;数据集元数据
。&lt;/span&gt;&lt;/span&gt; &lt;span
class=notranslate&gt;&lt;span onmouseover=&#34;_tipon(this)&#34; 
onmouseout=&#34;_tipoff()&#34;&gt;在对文本进行预处理和清理之后，我们训练了
一个单词矢量大小为&lt;span
lang=EN-US&gt;200&lt;/span&gt;的&lt;span lang=EN-US&gt;skip-gram&lt;/span&gt;模型
&lt;/span&gt;&lt;/span&gt;&lt;cite&gt;&lt;span
lang=EN-US style=&#39;font-family:宋体;mso-bidi-font-family:宋体&#39;&gt;[ 
&lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span class=ltxtext&gt;&lt;span 
style=&#39;font-size:11.0pt&#39;&gt;14&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;
]&lt;/span&gt;&lt;/cite&gt;&lt;span class=notranslate&gt;&lt;span lang=EN-US&gt; 
&lt;/span&gt;。我们省略了从词汇表中出现少于&lt;span
lang=EN-US&gt;200&lt;/span&gt;次的任何单词，从而最终得到一个大小为&lt;span 
lang=EN-US&gt;247465&lt;/span&gt;的字典&lt;span
lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span lang=EN style=&#39;mso-ansi-
language:EN&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S4.SS2.p6&gt;

&lt;p class=ltxp&gt;&lt;span lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;We 
keep the
convolutional model and the language model fixed during 
training of the
adversarial net.&lt;span style=&#39;color:red&#39;&gt; And leave the 
experiments when we even
&lt;span class=SpellE&gt;backpropagate&lt;/span&gt; through these models as 
future work.&lt;/span&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;&lt;span 
style=&#39;background:#E6ECF9&#39;&gt;我们在对抗网的训练期间保持卷积模型和
语言模型的固定。&lt;/span&gt;&lt;/span&gt;
&lt;span class=notranslate&gt;&lt;span onmouseover=&#34;_tipon(this)&#34; 
onmouseout=&#34;_tipoff()&#34;&gt;当我们甚至通过这些模型反向传播时，留下实
验作为未来的工作。&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S4.SS2.p7&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;对于我们的实验，我们使用
&lt;span lang=EN-US&gt;MIR Flickr
25,000&lt;/span&gt;数据集&lt;/span&gt;&lt;cite&gt;&lt;span lang=EN-US style=&#39;font-
family:宋体;mso-bidi-font-family:
宋体&#39;&gt;[ &lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span class=ltxtext&gt;&lt;span 
style=&#39;font-size:11.0pt&#39;&gt;10&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;
]&lt;/span&gt;&lt;/cite&gt;&lt;span class=notranslate&gt;&lt;span lang=EN-US&gt; 
&lt;/span&gt;，并使用我们上面描述的卷积模型和语言模型提取图像和标签特
征。&lt;/span&gt;
&lt;span class=notranslate&gt;&lt;span onmouseover=&#34;_tipon(this)&#34; 
onmouseout=&#34;_tipoff()&#34;&gt;我们的实验中省略了没有任何标签的图像，并
将注释视为额外标签&lt;/span&gt;&lt;/span&gt;&lt;span
class=notranslate&gt;&lt;span style=&#39;font-family:&#34;MS Mincho&#34;;mso-
bidi-font-family:
&#34;MS Mincho&#34;&#39;&gt;​​&lt;/span&gt;。&lt;/span&gt; &lt;span class=notranslate&gt;&lt;span
onmouseover=&#34;_tipon(this)&#34; onmouseout=&#34;_tipoff()&#34;&gt;前&lt;span 
lang=EN-US&gt;150,000&lt;/span&gt;个例子被用作训练集。&lt;/span&gt;&lt;/span&gt;
&lt;span class=notranslate&gt;&lt;span onmouseover=&#34;_tipon(this)&#34; 
onmouseout=&#34;_tipoff()&#34;&gt;对于每个关联的标签，在训练集内将具有多个
标签的图像重复一次。&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S4.SS2.p8&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;&lt;span 
style=&#39;background:#E6ECF9&#39;&gt;为了评估，我们为每个图像生成&lt;span
lang=EN-US&gt;100&lt;/span&gt;个样本，并使用词汇表中单词的向量表示的 余弦
相似性找到前&lt;span lang=EN-US&gt;20&lt;/span&gt;个最接近的单词到每个样本。
&lt;/span&gt;&lt;/span&gt;
&lt;span class=notranslate&gt;&lt;span onmouseover=&#34;_tipon(this)&#34; 
onmouseout=&#34;_tipoff()&#34;&gt;然后我们在所有&lt;span
lang=EN-US&gt;100&lt;/span&gt;个样本中选择前&lt;span lang=EN-US&gt;10&lt;/span&gt;个
最常用的单词。&lt;/span&gt;&lt;/span&gt; &lt;span
class=notranslate&gt;&lt;span onmouseover=&#34;_tipon(this)&#34; 
onmouseout=&#34;_tipoff()&#34;&gt;表&lt;span
lang=EN-US&gt;&lt;a
href=&#34;&#34;
target=&#34;_blank&#34; title=&#34;表2‣4.2多模式‣4实验结果‣条件生成性对抗网
&#34;&gt;&lt;span class=ltxtext&gt;2&lt;/span&gt;&lt;/a&gt;&lt;/span&gt;显示了用户分配的标签和
注释以及生成的标签的一些样本。&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S4.SS2.p9&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;最佳的可以工作的模型的生
成器接收大小为&lt;span lang=EN-US&gt;100&lt;/span&gt;的高斯噪声作为噪声先验
，并将其映射到&lt;span
lang=EN-US&gt;500&lt;/span&gt;维&lt;span class=SpellE&gt;&lt;span lang=EN-
US&gt;ReLu&lt;/span&gt;&lt;/span&gt;层。&lt;/span&gt;
&lt;span class=notranslate&gt;&lt;span onmouseover=&#34;_tipon(this)&#34; 
onmouseout=&#34;_tipoff()&#34;&gt;并将&lt;span
lang=EN-US&gt;4096&lt;/span&gt;维图像特征向量映射到&lt;span lang=EN-
US&gt;2000&lt;/span&gt;维&lt;span
class=SpellE&gt;&lt;span lang=EN-US&gt;ReLu&lt;/span&gt;&lt;/span&gt;隐藏层。
&lt;/span&gt;&lt;/span&gt; &lt;span
class=notranslate&gt;&lt;span onmouseover=&#34;_tipon(this)&#34; 
onmouseout=&#34;_tipoff()&#34;&gt;这两个层都映射到&lt;span
lang=EN-US&gt;200&lt;/span&gt;维线性层的联合表示中，它将输出生成的词矢量
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN
style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S4.SS2.p10&gt;

&lt;p class=ltxp&gt;&lt;span lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;The 
discriminator is
consisted of 500 and 1200 dimension &lt;span 
class=SpellE&gt;ReLu&lt;/span&gt; hidden
layers for word vectors and image features respectively and 
&lt;span class=SpellE&gt;maxout&lt;/span&gt;
layer with 1000 units and 3 pieces as the join layer which is 
finally fed to
the one single sigmoid unit.&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;&lt;span style=&#39;color:red&#39;&gt;
鉴别器由分别用于字向量和图像特征的&lt;span
lang=EN-US&gt;500&lt;/span&gt;和&lt;span lang=EN-US&gt;1200&lt;/span&gt;维&lt;span 
class=SpellE&gt;&lt;span
lang=EN-US&gt;ReLu&lt;/span&gt;&lt;/span&gt;隐藏层组成，并且具有&lt;span 
lang=EN-US&gt;1000&lt;/span&gt;个单元的&lt;span
class=SpellE&gt;&lt;span lang=EN-US&gt;maxout&lt;/span&gt;&lt;/span&gt;层和&lt;span 
lang=EN-US&gt;3&lt;/span&gt;片，
作为联合层， 并最终馈送到&lt;span lang=EN-US&gt;1&lt;/span&gt;个
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN
style=&#39;mso-ansi-language:EN&#39;&gt;sigmoid&lt;/span&gt;&lt;span 
class=notranslate&gt;&lt;span
style=&#39;color:red&#39;&gt;单元。&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN 
style=&#39;color:red;mso-ansi-language:
EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S4.SS2.p11&gt;

&lt;p class=ltxp&gt;该模型采用随机梯度体积训练，小批量为&lt;span 
lang=EN-US&gt;100&lt;/span&gt;，初始学习率为&lt;span
lang=EN-US&gt;0.1 &lt;/span&gt;，指数下降至&lt;span lang=EN-US&gt;.000001 
&lt;/span&gt;，衰减系数为&lt;span
lang=EN-US&gt;1.00004 &lt;/span&gt;。 还使用动量，初始值为&lt;span 
lang=EN-US&gt;.5 &lt;/span&gt;，增加到&lt;span
lang=EN-US&gt;0.7 &lt;/span&gt;。 对&lt;span lang=EN-US&gt;dropout&lt;/span&gt;概率
为&lt;span lang=EN-US&gt;0.5&lt;/span&gt;应用于生成器和鉴别器。&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;div id=S4.SS2.p12&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;&lt;span 
style=&#39;color:red;background:#E6ECF9&#39;&gt;超参数和架构选择是通过交叉
验证以及随机网格搜索和手动选择的混合获得的（尽管在一个有限的搜索
空间内）。&lt;/span&gt;&lt;span
lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span lang=EN style=&#39;mso-ansi-
language:EN&#39;&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;table class=MsoNormalTable border=0 cellpadding=0 style=&#39;mso-
cellspacing:1.5pt;
 mso-yfti-tbllook:1184;mso-padding-alt:0cm 5.4pt 0cm 5.4pt&#39;&gt;
 &lt;thead&gt;
  &lt;tr style=&#39;mso-yfti-irow:0;mso-yfti-firstrow:yes&#39;&gt;
   &lt;figure class=&#34;ltx_table&#34; id=&#34;S4.T2&#34;&gt;
   &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;&lt;/td&gt;
   &lt;td width=140 style=&#39;width:105.3pt;padding:.75pt .75pt .75pt 
.75pt&#39;&gt;
   &lt;p class=MsoNormal align=center style=&#39;text-
align:center&#39;&gt;&lt;b&gt;&lt;span
   lang=EN-US&gt;User tags + annotations&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;
   &lt;/td&gt;
   &lt;td width=140 style=&#39;width:105.3pt;padding:.75pt .75pt .75pt 
.75pt&#39;&gt;
   &lt;p class=MsoNormal align=center style=&#39;text-
align:center&#39;&gt;&lt;b&gt;&lt;span
   lang=EN-US&gt;Generated tags&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;
   &lt;/td&gt;
  &lt;/tr&gt;
 &lt;/thead&gt;
 &lt;tr style=&#39;mso-yfti-irow:1&#39;&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;
  &lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-no-
proof:yes&#39;&gt;


&lt;figure&gt;

&lt;img src=&#34;track.jpg&#34; /&gt;



&lt;figcaption data-pre=&#34;Figure &#34; data-post=&#34;:&#34; &gt;
  &lt;h4&gt;track&lt;/h4&gt;
  
&lt;/figcaption&gt;

&lt;/figure&gt; ![track](track.jpg)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=140 style=&#39;width:105.3pt;padding:.75pt .75pt .75pt 
.75pt&#39;&gt;
  &lt;p class=MsoNormal&gt;&lt;span class=SpellE&gt;&lt;span lang=EN-
US&gt;montanha&lt;/span&gt;&lt;/span&gt;&lt;span
  lang=EN-US&gt;, &lt;span class=SpellE&gt;trem&lt;/span&gt;, &lt;span 
class=SpellE&gt;inverno&lt;/span&gt;,
  &lt;span class=SpellE&gt;frio&lt;/span&gt;, people, male, plant life, 
tree, structures,
  transport, car&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=140 style=&#39;width:105.3pt;padding:.75pt .75pt .75pt 
.75pt&#39;&gt;
  &lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;taxi, passenger, line, 
transportation,
  railway station, passengers, railways, signals, rail, 
rails&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:2&#39;&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;
  &lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-no-
proof:yes&#39;&gt;![cake](cake.jpg)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=140 style=&#39;width:105.3pt;padding:.75pt .75pt .75pt 
.75pt&#39;&gt;
  &lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;food, raspberry, 
delicious, homemade&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=140 style=&#39;width:105.3pt;padding:.75pt .75pt .75pt 
.75pt&#39;&gt;
  &lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;chicken, fattening, 
cooked, peanut,
  cream, cookie, house made, bread, biscuit, bakes&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:3&#39;&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;
  &lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-no-
proof:yes&#39;&gt;![river](river.jpg)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=140 style=&#39;width:105.3pt;padding:.75pt .75pt .75pt 
.75pt&#39;&gt;
  &lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;water, river&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=140 style=&#39;width:105.3pt;padding:.75pt .75pt .75pt 
.75pt&#39;&gt;
  &lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;creek, lake, along, near, 
river, rocky, &lt;span
  class=SpellE&gt;treeline&lt;/span&gt;, valley, woods, 
waters&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
 &lt;tr style=&#39;mso-yfti-irow:4;mso-yfti-lastrow:yes&#39;&gt;
  &lt;td style=&#39;padding:.75pt .75pt .75pt .75pt&#39;&gt;
  &lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;&lt;span style=&#39;mso-no-
proof:yes&#39;&gt;![baby](baby.jpg)&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=140 style=&#39;width:105.3pt;padding:.75pt .75pt .75pt 
.75pt&#39;&gt;
  &lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;people, portrait, female, 
baby, indoor&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
  &lt;td width=140 style=&#39;width:105.3pt;padding:.75pt .75pt .75pt 
.75pt&#39;&gt;
  &lt;p class=MsoNormal&gt;&lt;span lang=EN-US&gt;love, people, posing, 
girl, young, strangers,
  pretty, women, happy, life&lt;/span&gt;&lt;/p&gt;
  &lt;/td&gt;
 &lt;/tr&gt;
&lt;/table&gt;

&lt;p class=MsoNormal&gt;&lt;span class=ltxtag&gt;&lt;figcaption 
class=&#34;ltx_caption&#34;&gt;&lt;span
lang=EN style=&#39;mso-ansi-language:EN&#39;&gt;Table 2: 
&lt;/span&gt;&lt;/span&gt;&lt;span
style=&#39;mso-ansi-language:EN&#39;&gt;生成的标签样本&lt;span 
lang=EN&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto;
mso-outline-level:2&#39;&gt;&lt;b&gt;&lt;span lang=EN-US style=&#39;font-
size:18.0pt;background:
#E6ECF9&#39;&gt;5&lt;/span&gt;&lt;/b&gt;&lt;b&gt;&lt;span style=&#39;font-
size:18.0pt;background:#E6ECF9&#39;&gt;未来的工作&lt;/span&gt;&lt;/b&gt;&lt;b&gt;&lt;span
lang=EN-US style=&#39;font-size:18.0pt&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;div id=S5.p1&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;&lt;span 
style=&#39;background:#E6ECF9&#39;&gt;本文中显示的结果非常初级，但它们展示
了条件对抗网的潜力，并展示了有趣和有用的应用程序的前景。
&lt;/span&gt;&lt;/span&gt;
&lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;&lt;span style=&#39;mso-ansi-
language:EN&#39;&gt;从&lt;/span&gt;现在到研讨会之间的未来探索中，我们期望提供
更复杂的模型，以及对其性能和特征的更详细和彻底的分析。&lt;/span&gt;
&lt;span lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;span onmouseover=&#34;_tipon(this)&#34; onmouseout=&#34;_tipoff()&#34;&gt;&lt;/p&gt;

&lt;div id=S5.p4&gt;

&lt;p class=ltxp&gt;&lt;span class=notranslate&gt;此外，在当前的实验中，我
们仅单独使用每个标签。&lt;/span&gt;&lt;/span&gt; &lt;span
onmouseover=&#34;_tipon(this)&#34; onmouseout=&#34;_tipoff()&#34;&gt;&lt;span 
class=notranslate&gt;但是通过同时使用多个标签（&lt;span
style=&#39;color:red&#39;&gt;有效地将生成问题作为&lt;span lang=EN-US&gt;&#39;&lt;/span&gt;
集合生成&lt;span lang=EN-US&gt;&#39;&lt;/span&gt;之一&lt;/span&gt;），我们希望获得更
好的结果。&lt;/span&gt;&lt;/span&gt;
&lt;span lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span onmouseover=&#34;_tipon(this)&#34; 
onmouseout=&#34;_tipoff()&#34;&gt;&lt;span
class=notranslate&gt;未来工作的另一个明显方向是建立一个联合训练计划
来学习语言模型。&lt;/span&gt;&lt;/span&gt; &lt;span
onmouseover=&#34;_tipon(this)&#34; onmouseout=&#34;_tipoff()&#34;&gt;&lt;span 
class=notranslate&gt;诸如&lt;/span&gt;&lt;cite&gt;&lt;span
lang=EN-US style=&#39;font-family:宋体;mso-bidi-font-family:宋体&#39;&gt;[ 
&lt;a
href=&#34;https://translate.googleusercontent.com/translate_c?
depth=1&amp;amp;rurl=translate.google.com.hk&amp;amp;sl=en&amp;amp;sp=nmt4&amp;
amp;tl=zh-CN&amp;amp;u=&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span class=ltxtext&gt;&lt;span 
style=&#39;font-size:11.0pt&#39;&gt;12&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;
]&lt;/span&gt;&lt;/cite&gt;&lt;cite&gt;&lt;span style=&#39;font-family:宋体;mso-bidi-
font-family:宋体&#39;&gt;之类的&lt;/span&gt;&lt;/cite&gt;&lt;span
class=notranslate&gt;作品表明我们可以学习适合特定任务的语言模型。
&lt;/span&gt;&lt;/span&gt; &lt;span lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;p&gt;&lt;section class=&#34;ltx_subsubsection&#34; id=&#34;S5.SS0.SSSx1&#34;&gt;&lt;/p&gt;

&lt;div id=S5.SS0.SSSx1.p1&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto;
mso-outline-level:4&#39;&gt;&lt;b&gt;&lt;span style=&#39;background:#E6ECF9&#39;&gt;致谢
&lt;/span&gt; &lt;span
lang=EN-US&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/b&gt;&lt;/p&gt;

&lt;p class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-margin-
bottom-alt:auto&#39;&gt;该项目是在&lt;span
lang=EN-US&gt;Pylearn2 &lt;i&gt;[ &lt;a
href=&#34;https://translate.googleusercontent.com/translate_c?
depth=1&amp;amp;rurl=translate.google.com.hk&amp;amp;sl=en&amp;amp;sp=nmt4&amp;
amp;tl=zh-CN&amp;amp;u=&#34;
target=&#34;_blank&#34; title=&#34;&#34;&gt;&lt;span style=&#39;font-
size:11.0pt&#39;&gt;7&lt;/span&gt;&lt;/a&gt; ]&lt;/i&gt;&lt;/span&gt;框架中开发的，我们要感谢
&lt;span
lang=EN-US&gt;Pylearn2&lt;/span&gt;开发人员。 我们还要感谢&lt;span 
lang=EN-US&gt;Ian &lt;span class=SpellE&gt;Goodfellow&lt;/span&gt;&lt;/span&gt;在蒙
特利尔大学期间进行的有益讨论。
作者非常感谢&lt;span lang=EN-US&gt;Flickr&lt;/span&gt;视觉与机器学习和生产工
程团队的支持（按字母顺序排列：&lt;span lang=EN-US&gt;Andrew
&lt;span class=SpellE&gt;Stadlen&lt;/span&gt;&lt;/span&gt;，&lt;span 
class=SpellE&gt;&lt;span lang=EN-US&gt;Arel&lt;/span&gt;&lt;/span&gt;&lt;span
lang=EN-US&gt; Cordero&lt;/span&gt;，&lt;span lang=EN-US&gt;Clayton &lt;span 
class=SpellE&gt;Mellina&lt;/span&gt;&lt;/span&gt;，&lt;span
class=SpellE&gt;&lt;span lang=EN-US&gt;Cyprien&lt;/span&gt;&lt;/span&gt;&lt;span 
lang=EN-US&gt; Noel&lt;/span&gt;，&lt;span
lang=EN-US&gt;Frank Liu&lt;/span&gt;，&lt;span lang=EN-US&gt;Gerry &lt;span 
class=SpellE&gt;Pesavento&lt;/span&gt;&lt;/span&gt;，&lt;span
class=SpellE&gt;&lt;span lang=EN-US&gt;Huy&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN-
US&gt; Nguyen&lt;/span&gt;，&lt;span
lang=EN-US&gt;Jack Culpepper&lt;/span&gt;，&lt;span lang=EN-US&gt;John &lt;span 
class=SpellE&gt;Ko&lt;/span&gt;
&lt;/span&gt;，&lt;span lang=EN-US&gt;Pierre &lt;span 
class=SpellE&gt;Garrigues&lt;/span&gt;&lt;/span&gt;，&lt;span
lang=EN-US&gt;Rob Hess&lt;/span&gt;，&lt;span lang=EN-US&gt;Stacey &lt;span 
class=SpellE&gt;Svetlichnaya&lt;/span&gt;&lt;/span&gt;，&lt;span
lang=EN-US&gt;Tobi Baumgartner&lt;/span&gt;和&lt;span lang=EN-US&gt;Ye 
Lu&lt;/span&gt;）。 &lt;/p&gt;

&lt;p class=ltxp&gt;&lt;span lang=EN-US&gt;&lt;o:p&gt;&amp;nbsp;&lt;/o:p&gt;&lt;/span&gt;&lt;/p&gt;

&lt;/div&gt;

&lt;h2&gt;&lt;span lang=EN style=&#39;font-size:11.0pt;mso-ansi-
language:EN&#39;&gt;&lt;/section&gt;&lt;/section&gt;&lt;section 
class=&#34;ltx_bibliography&#34; 
id=&#34;bib&#34;&gt;References&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/h2&gt;

&lt;ul type=disc&gt;
 &lt;li class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-
margin-bottom-alt:auto;
     mso-list:l0 level1 lfo3;tab-stops:list 36.0pt&#39; 
id=bib.bib1&gt;&lt;span
     class=SpellE&gt;&lt;span class=ltxtext&gt;&lt;span lang=EN 
style=&#39;font-size:11.0pt;
     mso-ansi-language:EN&#39;&gt;Bengio&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span 
class=ltxtext&gt;&lt;span
     lang=EN style=&#39;font-size:11.0pt;mso-ansi-language:EN&#39;&gt; 
et&amp;nbsp;al. [2013]&lt;/span&gt;&lt;/span&gt;&lt;span
     lang=EN style=&#39;mso-ansi-language:EN&#39;&gt; &lt;/span&gt;&lt;span 
class=SpellE&gt;&lt;span
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     class=SpellE&gt;Corrado&lt;/span&gt;, G., and Dean, J. (2013). 
Efficient estimation
     of word representations in vector space. In International 
Conference on
     Learning Representations: Workshops Track. 
&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN
     style=&#39;mso-ansi-language:EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/li&gt;
 &lt;li class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-
margin-bottom-alt:auto;
     mso-list:l0 level1 lfo3;tab-stops:list 36.0pt&#39; 
id=bib.bib15&gt;&lt;span
     class=SpellE&gt;&lt;span class=ltxtext&gt;&lt;span lang=EN 
style=&#39;font-size:11.0pt;
     mso-ansi-
language:EN&#39;&gt;Russakovsky&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span 
class=ltxtext&gt;&lt;span
     lang=EN style=&#39;font-size:11.0pt;mso-ansi-language:EN&#39;&gt; and 
&lt;span
     class=SpellE&gt;Fei-Fei&lt;/span&gt; [2010]&lt;/span&gt;&lt;/span&gt;&lt;span 
lang=EN
     style=&#39;mso-ansi-language:EN&#39;&gt; &lt;a
     
href=&#34;http://vision.stanford.edu/documents/RussakovskyFeiFei_EC
CV2010.pdf&#34;
     target=&#34;_blank&#34;&gt;&lt;span class=ltxtext&gt;&lt;span style=&#39;font-
size:11.0pt&#39;&gt;Russakovsky,
     O. and Fei-Fei, L. (2010). Attribute learning in large-
scale datasets. In
     European Conference of Computer Vision (ECCV), 
International Workshop on
     Parts and Attributes, Crete, Greece. 
&lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/li&gt;
 &lt;li class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-
margin-bottom-alt:auto;
     mso-list:l0 level1 lfo3;tab-stops:list 36.0pt&#39; 
id=bib.bib16&gt;&lt;span
     class=ltxtext&gt;&lt;span lang=EN style=&#39;font-size:11.0pt;mso-
ansi-language:
     EN&#39;&gt;Srivastava and &lt;span class=SpellE&gt;Salakhutdinov&lt;/span&gt; 
[2012]&lt;/span&gt;&lt;/span&gt;&lt;span
     lang=EN style=&#39;mso-ansi-language:EN&#39;&gt; &lt;/span&gt;&lt;span 
class=ltxtext&gt;&lt;span
     lang=EN style=&#39;font-size:11.0pt;mso-ansi-
language:EN&#39;&gt;Srivastava, N. and &lt;span
     class=SpellE&gt;Salakhutdinov&lt;/span&gt;, R. (2012). Multimodal 
learning with
     deep &lt;span class=SpellE&gt;boltzmann&lt;/span&gt; machines. In 
NIPS&lt;/span&gt;&lt;/span&gt;&lt;span
     class=ltxtext&gt;&lt;span style=&#39;font-size:11.0pt;mso-ansi-
language:EN&#39;&gt;’&lt;span
     lang=EN&gt;2012. &lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span lang=EN 
style=&#39;mso-ansi-language:
     EN&#39;&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/li&gt;
 &lt;li class=MsoNormal style=&#39;mso-margin-top-alt:auto;mso-
margin-bottom-alt:auto;
     mso-list:l0 level1 lfo3;tab-stops:list 36.0pt&#39; 
id=bib.bib17&gt;&lt;span
     class=SpellE&gt;&lt;span class=ltxtext&gt;&lt;span lang=EN 
style=&#39;font-size:11.0pt;
     mso-ansi-language:EN&#39;&gt;Szegedy&lt;/span&gt;&lt;/span&gt;&lt;/span&gt;&lt;span 
class=ltxtext&gt;&lt;span
     lang=EN style=&#39;font-size:11.0pt;mso-ansi-language:EN&#39;&gt; 
et&amp;nbsp;al. [2014]&lt;/span&gt;&lt;/span&gt;&lt;span
     lang=EN style=&#39;mso-ansi-language:EN&#39;&gt; &lt;a
     href=&#34;&#34; target=&#34;_blank&#34;&gt;&lt;span
     class=ltxtext&gt;&lt;span style=&#39;font-size:11.0pt&#39;&gt;Szegedy, C., 
Liu, W., Jia,
     Y., Sermanet, P., Reed, S., Anguelov, D., Erhan, D., 
Vanhoucke, V., and
     Rabinovich, A. (2014). Going deeper with convolutions. 
arXiv preprint
     arXiv:1409.4842. &lt;/span&gt;&lt;/span&gt;&lt;/a&gt;&lt;o:p&gt;&lt;/o:p&gt;&lt;/span&gt;&lt;/li&gt;
&lt;/ul&gt;

&lt;p&gt;&lt;/div&gt;&lt;/p&gt;

&lt;p&gt;&lt;/section&gt;&lt;/article&gt;&lt;footer class=&#34;ltx_page_footer&#34;&gt;
&lt;/body&gt;&lt;/p&gt;

&lt;p&gt;&lt;/html&gt;&lt;/p&gt;
</description>
    </item>
    
    <item>
      <title>An example preprint / working paper</title>
      <link>https://wormcode.github.io/publication/preprint/</link>
      <pubDate>Sun, 07 Apr 2019 00:00:00 +0000</pubDate>
      
      <guid>https://wormcode.github.io/publication/preprint/</guid>
      <description>&lt;div class=&#34;alert alert-note&#34;&gt;
  &lt;div&gt;
    Click the &lt;em&gt;Slides&lt;/em&gt; button above to demo Academic&amp;rsquo;s Markdown slides feature.
  &lt;/div&gt;
&lt;/div&gt;

&lt;p&gt;Supplementary notes can be added here, including &lt;a href=&#34;https://sourcethemes.com/academic/docs/writing-markdown-latex/&#34; target=&#34;_blank&#34;&gt;code and math&lt;/a&gt;.&lt;/p&gt;
</description>
    </item>
    
    <item>
      <title>Display Jupyter Notebooks with Academic</title>
      <link>https://wormcode.github.io/post/jupyter/</link>
      <pubDate>Tue, 05 Feb 2019 00:00:00 +0000</pubDate>
      
      <guid>https://wormcode.github.io/post/jupyter/</guid>
      <description>

&lt;pre&gt;&lt;code class=&#34;language-python&#34;&gt;from IPython.core.display import Image
Image(&#39;https://www.python.org/static/community_logos/python-logo-master-v3-TM-flattened.png&#39;)
&lt;/code&gt;&lt;/pre&gt;

&lt;p&gt;&lt;img src=&#34;./academic_0_0.png&#34; alt=&#34;png&#34; /&gt;&lt;/p&gt;

&lt;pre&gt;&lt;code class=&#34;language-python&#34;&gt;print(&amp;quot;Welcome to Academic!&amp;quot;)
&lt;/code&gt;&lt;/pre&gt;

&lt;pre&gt;&lt;code&gt;Welcome to Academic!
&lt;/code&gt;&lt;/pre&gt;

&lt;h2 id=&#34;install-python-and-jupyter&#34;&gt;Install Python and Jupyter&lt;/h2&gt;

&lt;p&gt;&lt;a href=&#34;https://www.anaconda.com/distribution/#download-section&#34; target=&#34;_blank&#34;&gt;Install Anaconda&lt;/a&gt; which includes Python 3 and Jupyter notebook.&lt;/p&gt;

&lt;p&gt;Otherwise, for advanced users, install Jupyter notebook with &lt;code&gt;pip3 install jupyter&lt;/code&gt;.&lt;/p&gt;

&lt;h2 id=&#34;create-a-new-blog-post-as-usual-https-sourcethemes-com-academic-docs-managing-content-create-a-blog-post&#34;&gt;Create a new blog post &lt;a href=&#34;https://sourcethemes.com/academic/docs/managing-content/#create-a-blog-post&#34; target=&#34;_blank&#34;&gt;as usual&lt;/a&gt;&lt;/h2&gt;

&lt;p&gt;Run the following commands in your Terminal, substituting &lt;code&gt;&amp;lt;MY_WEBSITE_FOLDER&amp;gt;&lt;/code&gt; and &lt;code&gt;my-post&lt;/code&gt; with the file path to your Academic website folder and a name for your blog post (without spaces), respectively:&lt;/p&gt;

&lt;pre&gt;&lt;code class=&#34;language-bash&#34;&gt;cd &amp;lt;MY_WEBSITE_FOLDER&amp;gt;
hugo new  --kind post post/my-post
cd &amp;lt;MY_WEBSITE_FOLDER&amp;gt;/content/post/my-post/
&lt;/code&gt;&lt;/pre&gt;

&lt;h2 id=&#34;create-or-upload-a-jupyter-notebook&#34;&gt;Create or upload a Jupyter notebook&lt;/h2&gt;

&lt;p&gt;Run the following command to start Jupyter within your new blog post folder. Then create a new Jupyter notebook (&lt;em&gt;New &amp;gt; Python Notebook&lt;/em&gt;) or upload a notebook.&lt;/p&gt;

&lt;pre&gt;&lt;code class=&#34;language-bash&#34;&gt;jupyter notebook
&lt;/code&gt;&lt;/pre&gt;

&lt;h2 id=&#34;convert-notebook-to-markdown&#34;&gt;Convert notebook to Markdown&lt;/h2&gt;

&lt;pre&gt;&lt;code class=&#34;language-bash&#34;&gt;jupyter nbconvert Untitled.ipynb --to markdown --NbConvertApp.output_files_dir=.

# Copy the contents of Untitled.md and append it to index.md:
cat Untitled.md | tee -a index.md

# Remove the temporary file:
rm Untitled.md
&lt;/code&gt;&lt;/pre&gt;

&lt;h2 id=&#34;edit-your-post-metadata&#34;&gt;Edit your post metadata&lt;/h2&gt;

&lt;p&gt;Open &lt;code&gt;index.md&lt;/code&gt; in your text editor and edit the title etc. in the &lt;a href=&#34;https://sourcethemes.com/academic/docs/front-matter/&#34; target=&#34;_blank&#34;&gt;front matter&lt;/a&gt; according to your preference.&lt;/p&gt;

&lt;p&gt;To set a &lt;a href=&#34;https://sourcethemes.com/academic/docs/managing-content/#featured-image&#34; target=&#34;_blank&#34;&gt;featured image&lt;/a&gt;, place an image named &lt;code&gt;featured&lt;/code&gt; into your post&amp;rsquo;s folder.&lt;/p&gt;

&lt;p&gt;For other tips, such as using math, see the guide on &lt;a href=&#34;https://sourcethemes.com/academic/docs/writing-markdown-latex/&#34; target=&#34;_blank&#34;&gt;writing content with Academic&lt;/a&gt;.&lt;/p&gt;
</description>
    </item>
    
    <item>
      <title>Slides</title>
      <link>https://wormcode.github.io/slides/example/</link>
      <pubDate>Tue, 05 Feb 2019 00:00:00 +0000</pubDate>
      
      <guid>https://wormcode.github.io/slides/example/</guid>
      <description>

&lt;h1 id=&#34;welcome-to-slides&#34;&gt;Welcome to Slides&lt;/h1&gt;

&lt;p&gt;&lt;a href=&#34;https://sourcethemes.com/academic/&#34; target=&#34;_blank&#34;&gt;Academic&lt;/a&gt;&lt;/p&gt;

&lt;hr /&gt;

&lt;h2 id=&#34;features&#34;&gt;Features&lt;/h2&gt;

&lt;ul&gt;
&lt;li&gt;Efficiently write slides in Markdown&lt;/li&gt;
&lt;li&gt;3-in-1: Create, Present, and Publish your slides&lt;/li&gt;
&lt;li&gt;Supports speaker notes&lt;/li&gt;
&lt;li&gt;Mobile friendly slides&lt;/li&gt;
&lt;/ul&gt;

&lt;hr /&gt;

&lt;h2 id=&#34;controls&#34;&gt;Controls&lt;/h2&gt;

&lt;ul&gt;
&lt;li&gt;Next: &lt;code&gt;Right Arrow&lt;/code&gt; or &lt;code&gt;Space&lt;/code&gt;&lt;/li&gt;
&lt;li&gt;Previous: &lt;code&gt;Left Arrow&lt;/code&gt;&lt;/li&gt;
&lt;li&gt;Start: &lt;code&gt;Home&lt;/code&gt;&lt;/li&gt;
&lt;li&gt;Finish: &lt;code&gt;End&lt;/code&gt;&lt;/li&gt;
&lt;li&gt;Overview: &lt;code&gt;Esc&lt;/code&gt;&lt;/li&gt;
&lt;li&gt;Speaker notes: &lt;code&gt;S&lt;/code&gt;&lt;/li&gt;
&lt;li&gt;Fullscreen: &lt;code&gt;F&lt;/code&gt;&lt;/li&gt;
&lt;li&gt;Zoom: &lt;code&gt;Alt + Click&lt;/code&gt;&lt;/li&gt;
&lt;li&gt;&lt;a href=&#34;https://github.com/hakimel/reveal.js#pdf-export&#34; target=&#34;_blank&#34;&gt;PDF Export&lt;/a&gt;: &lt;code&gt;E&lt;/code&gt;&lt;/li&gt;
&lt;/ul&gt;

&lt;hr /&gt;

&lt;h2 id=&#34;code-highlighting&#34;&gt;Code Highlighting&lt;/h2&gt;

&lt;p&gt;Inline code: &lt;code&gt;variable&lt;/code&gt;&lt;/p&gt;

&lt;p&gt;Code block:&lt;/p&gt;

&lt;pre&gt;&lt;code class=&#34;language-python&#34;&gt;porridge = &amp;quot;blueberry&amp;quot;
if porridge == &amp;quot;blueberry&amp;quot;:
    print(&amp;quot;Eating...&amp;quot;)
&lt;/code&gt;&lt;/pre&gt;

&lt;hr /&gt;

&lt;h2 id=&#34;math&#34;&gt;Math&lt;/h2&gt;

&lt;p&gt;In-line math: $x + y = z$&lt;/p&gt;

&lt;p&gt;Block math:&lt;/p&gt;

&lt;p&gt;$$
f\left( x \right) = \;\frac{{2\left( {x + 4} \right)\left( {x - 4} \right)}}{{\left( {x + 4} \right)\left( {x + 1} \right)}}
$$&lt;/p&gt;

&lt;hr /&gt;

&lt;h2 id=&#34;fragments&#34;&gt;Fragments&lt;/h2&gt;

&lt;p&gt;Make content appear incrementally&lt;/p&gt;

&lt;pre&gt;&lt;code&gt;{{% fragment %}} One {{% /fragment %}}
{{% fragment %}} **Two** {{% /fragment %}}
{{% fragment %}} Three {{% /fragment %}}
&lt;/code&gt;&lt;/pre&gt;

&lt;p&gt;Press &lt;code&gt;Space&lt;/code&gt; to play!&lt;/p&gt;

&lt;p&gt;&lt;span class=&#34;fragment &#34; &gt;
   One
&lt;/span&gt;
&lt;span class=&#34;fragment &#34; &gt;
   &lt;strong&gt;Two&lt;/strong&gt;
&lt;/span&gt;
&lt;span class=&#34;fragment &#34; &gt;
   Three
&lt;/span&gt;&lt;/p&gt;

&lt;hr /&gt;

&lt;p&gt;A fragment can accept two optional parameters:&lt;/p&gt;

&lt;ul&gt;
&lt;li&gt;&lt;code&gt;class&lt;/code&gt;: use a custom style (requires definition in custom CSS)&lt;/li&gt;
&lt;li&gt;&lt;code&gt;weight&lt;/code&gt;: sets the order in which a fragment appears&lt;/li&gt;
&lt;/ul&gt;

&lt;hr /&gt;

&lt;h2 id=&#34;speaker-notes&#34;&gt;Speaker Notes&lt;/h2&gt;

&lt;p&gt;Add speaker notes to your presentation&lt;/p&gt;

&lt;pre&gt;&lt;code class=&#34;language-markdown&#34;&gt;{{% speaker_note %}}
- Only the speaker can read these notes
- Press `S` key to view
{{% /speaker_note %}}
&lt;/code&gt;&lt;/pre&gt;

&lt;p&gt;Press the &lt;code&gt;S&lt;/code&gt; key to view the speaker notes!&lt;/p&gt;

&lt;aside class=&#34;notes&#34;&gt;
  &lt;ul&gt;
&lt;li&gt;Only the speaker can read these notes&lt;/li&gt;
&lt;li&gt;Press &lt;code&gt;S&lt;/code&gt; key to view&lt;/li&gt;
&lt;/ul&gt;
&lt;/aside&gt;

&lt;hr /&gt;

&lt;h2 id=&#34;themes&#34;&gt;Themes&lt;/h2&gt;

&lt;ul&gt;
&lt;li&gt;black: Black background, white text, blue links (default)&lt;/li&gt;
&lt;li&gt;white: White background, black text, blue links&lt;/li&gt;
&lt;li&gt;league: Gray background, white text, blue links&lt;/li&gt;
&lt;li&gt;beige: Beige background, dark text, brown links&lt;/li&gt;
&lt;li&gt;sky: Blue background, thin dark text, blue links&lt;/li&gt;
&lt;/ul&gt;

&lt;hr /&gt;

&lt;ul&gt;
&lt;li&gt;night: Black background, thick white text, orange links&lt;/li&gt;
&lt;li&gt;serif: Cappuccino background, gray text, brown links&lt;/li&gt;
&lt;li&gt;simple: White background, black text, blue links&lt;/li&gt;
&lt;li&gt;solarized: Cream-colored background, dark green text, blue links&lt;/li&gt;
&lt;/ul&gt;

&lt;hr /&gt;


&lt;section data-noprocess data-shortcode-slide
  
      
      data-background-image=&#34;/img/boards.jpg&#34;
  &gt;


&lt;h2 id=&#34;custom-slide&#34;&gt;Custom Slide&lt;/h2&gt;

&lt;p&gt;Customize the slide style and background&lt;/p&gt;

&lt;pre&gt;&lt;code class=&#34;language-markdown&#34;&gt;{{&amp;lt; slide background-image=&amp;quot;/img/boards.jpg&amp;quot; &amp;gt;}}
{{&amp;lt; slide background-color=&amp;quot;#0000FF&amp;quot; &amp;gt;}}
{{&amp;lt; slide class=&amp;quot;my-style&amp;quot; &amp;gt;}}
&lt;/code&gt;&lt;/pre&gt;

&lt;hr /&gt;

&lt;h2 id=&#34;custom-css-example&#34;&gt;Custom CSS Example&lt;/h2&gt;

&lt;p&gt;Let&amp;rsquo;s make headers navy colored.&lt;/p&gt;

&lt;p&gt;Create &lt;code&gt;assets/css/reveal_custom.css&lt;/code&gt; with:&lt;/p&gt;

&lt;pre&gt;&lt;code class=&#34;language-css&#34;&gt;.reveal section h1,
.reveal section h2,
.reveal section h3 {
  color: navy;
}
&lt;/code&gt;&lt;/pre&gt;

&lt;hr /&gt;

&lt;h1 id=&#34;questions&#34;&gt;Questions?&lt;/h1&gt;

&lt;p&gt;&lt;a href=&#34;https://discourse.gohugo.io&#34; target=&#34;_blank&#34;&gt;Ask&lt;/a&gt;&lt;/p&gt;

&lt;p&gt;&lt;a href=&#34;https://sourcethemes.com/academic/docs/&#34; target=&#34;_blank&#34;&gt;Documentation&lt;/a&gt;&lt;/p&gt;
</description>
    </item>
    
    <item>
      <title>test post</title>
      <link>https://wormcode.github.io/post/</link>
      <pubDate>Tue, 05 Feb 2019 00:00:00 +0000</pubDate>
      
      <guid>https://wormcode.github.io/post/</guid>
      <description>

&lt;pre&gt;&lt;code class=&#34;language-python&#34;&gt;from IPython.core.display import Image
Image(&#39;https://www.python.org/static/community_logos/python-logo-master-v3-TM-flattened.png&#39;)
&lt;/code&gt;&lt;/pre&gt;

&lt;p&gt;&lt;img src=&#34;./academic_0_0.png&#34; alt=&#34;png&#34; /&gt;&lt;/p&gt;

&lt;pre&gt;&lt;code class=&#34;language-python&#34;&gt;print(&amp;quot;Welcome to Academic!&amp;quot;)
&lt;/code&gt;&lt;/pre&gt;

&lt;pre&gt;&lt;code&gt;Welcome to Academic!
&lt;/code&gt;&lt;/pre&gt;

&lt;h2 id=&#34;install-python-and-jupyter&#34;&gt;Install Python and Jupyter&lt;/h2&gt;

&lt;p&gt;&lt;a href=&#34;https://www.anaconda.com/distribution/#download-section&#34; target=&#34;_blank&#34;&gt;Install Anaconda&lt;/a&gt; which includes Python 3 and Jupyter notebook.&lt;/p&gt;

&lt;p&gt;Otherwise, for advanced users, install Jupyter notebook with &lt;code&gt;pip3 install jupyter&lt;/code&gt;.&lt;/p&gt;

&lt;h2 id=&#34;create-a-new-blog-post-as-usual-https-sourcethemes-com-academic-docs-managing-content-create-a-blog-post&#34;&gt;Create a new blog post &lt;a href=&#34;https://sourcethemes.com/academic/docs/managing-content/#create-a-blog-post&#34; target=&#34;_blank&#34;&gt;as usual&lt;/a&gt;&lt;/h2&gt;

&lt;p&gt;Run the following commands in your Terminal, substituting &lt;code&gt;&amp;lt;MY_WEBSITE_FOLDER&amp;gt;&lt;/code&gt; and &lt;code&gt;my-post&lt;/code&gt; with the file path to your Academic website folder and a name for your blog post (without spaces), respectively:&lt;/p&gt;

&lt;pre&gt;&lt;code class=&#34;language-bash&#34;&gt;cd &amp;lt;MY_WEBSITE_FOLDER&amp;gt;
hugo new  --kind post post/my-post
cd &amp;lt;MY_WEBSITE_FOLDER&amp;gt;/content/post/my-post/
&lt;/code&gt;&lt;/pre&gt;

&lt;h2 id=&#34;create-or-upload-a-jupyter-notebook&#34;&gt;Create or upload a Jupyter notebook&lt;/h2&gt;

&lt;p&gt;Run the following command to start Jupyter within your new blog post folder. Then create a new Jupyter notebook (&lt;em&gt;New &amp;gt; Python Notebook&lt;/em&gt;) or upload a notebook.&lt;/p&gt;

&lt;pre&gt;&lt;code class=&#34;language-bash&#34;&gt;jupyter notebook
&lt;/code&gt;&lt;/pre&gt;

&lt;h2 id=&#34;convert-notebook-to-markdown&#34;&gt;Convert notebook to Markdown&lt;/h2&gt;

&lt;pre&gt;&lt;code class=&#34;language-bash&#34;&gt;jupyter nbconvert Untitled.ipynb --to markdown --NbConvertApp.output_files_dir=.

# Copy the contents of Untitled.md and append it to index.md:
cat Untitled.md | tee -a index.md

# Remove the temporary file:
rm Untitled.md
&lt;/code&gt;&lt;/pre&gt;

&lt;h2 id=&#34;edit-your-post-metadata&#34;&gt;Edit your post metadata&lt;/h2&gt;

&lt;p&gt;Open &lt;code&gt;index.md&lt;/code&gt; in your text editor and edit the title etc. in the &lt;a href=&#34;https://sourcethemes.com/academic/docs/front-matter/&#34; target=&#34;_blank&#34;&gt;front matter&lt;/a&gt; according to your preference.&lt;/p&gt;

&lt;p&gt;To set a &lt;a href=&#34;https://sourcethemes.com/academic/docs/managing-content/#featured-image&#34; target=&#34;_blank&#34;&gt;featured image&lt;/a&gt;, place an image named &lt;code&gt;featured&lt;/code&gt; into your post&amp;rsquo;s folder.&lt;/p&gt;

&lt;p&gt;For other tips, such as using math, see the guide on &lt;a href=&#34;https://sourcethemes.com/academic/docs/writing-markdown-latex/&#34; target=&#34;_blank&#34;&gt;writing content with Academic&lt;/a&gt;.&lt;/p&gt;
</description>
    </item>
    
    <item>
      <title>翻译 SC-FEGAN:Face Editing Generative Adversarial Network with User’s Sketch and Color</title>
      <link>https://wormcode.github.io/post/sc-fegan/</link>
      <pubDate>Tue, 05 Feb 2019 00:00:00 +0000</pubDate>
      
      <guid>https://wormcode.github.io/post/sc-fegan/</guid>
      <description>

&lt;p&gt;&lt;strong&gt;翻译者:wormcode, 如发现问题请邮件&lt;/strong&gt;&lt;/p&gt;

&lt;p&gt;SC-FEGAN: Face Editing Generative Adversarial Network with User’s Sketch and Color
Youngjoo Jo   Jongyoul Park
ETRI
South Korea
frun.youngjoo,jongyoulg@etri.re.kr&lt;/p&gt;

&lt;hr /&gt;

&lt;p&gt;&lt;strong&gt;SC-FEGAN 使用用户输入的草图和颜色进行脸部编辑生成对抗网络&lt;/strong&gt;&lt;/p&gt;

&lt;p&gt;&lt;center &gt;
Youngjoo Jo   Jongyoul Park&lt;br /&gt;
ETRI&lt;br /&gt;
South Korea&lt;br /&gt;
frun.youngjoo,jongyoulg@etri.re.kr&lt;br /&gt;
&lt;/center&gt;&lt;/p&gt;

&lt;h1 id=&#34;摘要&#34;&gt;摘要&lt;/h1&gt;

&lt;p&gt;我们提出了一种新颖的图像编辑系统，可以在用户提供任意形状的蒙版，草图和颜色作为输入时生成图像。 我们的系统包括端到端可训练的卷积网络。 与现有方法相反，我们的系统完全利用具有颜色和形状的任意形状用户输入。 这允许系统响应用户的草图和颜色输入，使用它作为生成图像的指南。 在我们的特定工作中，我们训练的网络具有额外的风格损失[3]，这使得即使在图像的大部分被移除情况下可以生成更加逼真的结果。 我们提出的网络架构SC-FEGAN非常适合使用直观的用户输入生成高质量的合成图像。&lt;/p&gt;

&lt;h1 id=&#34;1-引言&#34;&gt;1. 引言&lt;/h1&gt;

&lt;p&gt;生成对抗网络（GAN）的图像补全是计算机视觉中高度认可的主题。 随着图像交换成为当今日常通信中的常见介质媒体，在最小图像补全特征（痕迹）上对生成图像中的真实感的需求增加。 这种需求反映在社交媒体统计数据上。 但是，大多数图像编辑软件都需要专业知识，例如知道在特定情况下使用哪些特定工具，以便按照我们想要的方式有效地修改图像。 相反，响应用户输入的图像补全方法将允许新手根据需要容易地修改图像。 类似地，即使图像中存在擦除部分，我们提出的系统也能够轻松生成高质量的人脸图像，前提是草图和颜色作为输入。&lt;/p&gt;

&lt;p&gt;在最近的工作中，已经使用基于深度学习的图像补全方法来恢复图像的擦除部分。最典型的方法是使用普通（方形）蒙版，然后使用编码器解码器生成器恢复遮挡区域。然后使用全局和局部鉴别器来估计结果是真实的还是假的[5,9]。然而，该系统限于低分辨率图像，并且所生成的图像在遮挡区域上具有令人尴尬的边缘。此外，修复区上合成图像经常达不到用户的期望，因为生成器从未被给予任何用户输入以用作指导。改进此限制的一些工作包括Deepfillv2 [17]，一种利用用户草图作为输入的工作，以及GuidedInpating [20]，它将另一个图像的一部分作为输入来恢复缺失的部分。但是，由于Deepfillv2不使用颜色输入，因此合成图像中的颜色通过来自从训练数据集学习的先前分布的推断来进行计算。 Guided-Inpating使用其他图像的一部分来恢复已删除的区域。然而，很难恢复细节，因为这样的过程需要推断用户偏好的参考图像。最近的另一项工作Ideepcolor [19]提出了一种系统，它接受用户输入的颜色作为参考，以创建黑白图像对应的彩色图像。但是，Ideepcolor中的系统不允许编辑对象结构或恢复图像上已删除的部分。在另一项工作中，引入了一个面部编辑系统FaceShop [12]，它接受草图和颜色作为用户输入。但是，FaceShop用作生成合成图像的交互系统有一些限制。首先，它利用随机矩形和 可旋转蒙版来擦除那些由局部和全局鉴别器中使用的区域。这意味着局部鉴别器必须调整  修复的局部补丁  的大小以接受拟合输入尺寸，并且调整大小的过程中将使图像的擦除部分和剩余部分中的信息失真。结果，所产生的图像在修复部分将具有尴尬（明显的？）的边缘。其次，如果太多区域被擦除，FaceShop会产生不合理的合成图像。通常，当给定整个头发部分被擦除的图像时，系统会以扭曲的形状恢复它。&lt;br /&gt;
&lt;img src=&#34;figure1.png&#34; alt=&#34;figure1&#34; /&gt;&lt;br /&gt;
图1.我们系统的面部图像编辑结果。 它可以采取任意形状的输入，包括面具，草图和颜色。 对于每个示例，它表明我们的系统使用户可以轻松编辑脸部的形状和颜色，即使用户想要完全改变发型和眼睛（第三行）。 有趣的是，用户可以通过我们的系统编辑耳环（第四行）。&lt;/p&gt;

&lt;p&gt;为了解决上述限制，我们提出了一种具有全卷积网络的SC-FEGAN，能够进行端到端的训练。 我们提出的网络使用SN-patchGAN [17]鉴别器来解决和改善尴尬的边缘。 该系统不仅具有一般的GAN损失，而且还具有风格损失，即使在大面积缺失的情况下也可以编辑面部图像的各部分。 我们的系统使用用户的自由形状输入创建高质量的逼真合成图像。 草图和颜色的任意形状域输入也有一个有趣的叠加效应，如图1所示。总之，我们做出以下贡献：&lt;/p&gt;

&lt;ul&gt;
&lt;li&gt;&lt;p&gt;我们提出一种类似于Unet [13]的网络体系结构，带有门控卷积层[17]。 对于训练和推理阶段，这种架构更容易，更快捷。 与我们案例中的粗糙-精细网络相比，它产生了优越而细致的结果。&lt;/p&gt;&lt;/li&gt;

&lt;li&gt;&lt;p&gt;We created a free-form domain data of masks, color and sketch. This data is used for  making incomplete image data for training   instead of  stereotyped form input.&lt;br /&gt;
我们创建了蒙版，颜色和草图的自由格式域数据&lt;problem tbd&gt;。 该数据用于 使 不完整图像数据用于训练  而不是刻板形式的输入。&lt;/p&gt;&lt;/li&gt;

&lt;li&gt;&lt;p&gt;我们应用了SN-patchGAN [17]鉴别器，并以额外的风格损失训练了我们的网络。 该应用程序涵盖了大部分被擦除的情况，并且在管理蒙版边缘时表现出稳健性。 它还允许生成所生成图像的细节，例如高质量的合成发型和耳环。&lt;/p&gt;&lt;/li&gt;
&lt;/ul&gt;

&lt;h1 id=&#34;2-related-work&#34;&gt;2. Related Work&lt;/h1&gt;

&lt;p&gt;交互式图像修改具有广泛的历史，主要涉及使用手工特征而非深度学习的技术。 这种优势反映在商业图像编辑软件和我们的使用实践中。 因为大多数商业图像编辑软件使用定义好的操作，所以典型的图像修改任务需要专业知识来策略性地应用图像的变换组合。 除了专业知识，用户还需要花费很长的工作时间来生产精致的产品。 因此，传统方法对于非专家来说是不利的，并且用于产生高质量结果是繁琐的。 除了这些传统的建模方法之外，通过使用大数据集训练生成模型，GAN研究方面的最新突破已经开发了几种补全，修改和转换图像的方法。&lt;/p&gt;

&lt;p&gt;在本节中，我们将讨论使用深度学习流行的图像编辑方法中的 图像补全和图像转换领域的几项工作。&lt;/p&gt;

&lt;h2 id=&#34;2-1-image-translation&#34;&gt;2.1. Image Translation&lt;/h2&gt;

&lt;p&gt;用于图像翻译的GAN首先被提出用于学习两个数据集[21,6]之间的图像域变换。 Pix2Pix [6]提出了一个系统使用了一种数据集，该数据集由成对图像组成，可用于创建模型，这种模型或将分割标签转换为原始图像，或将草图转换为图像，或将黑白图像转换为彩色图像。 但是该系统要求图像和目标图像必须成对存在于训练数据集中，以便学习域之间的变换。 CycleGAN [21]提出了对这种要求进行改进的建议。 给定没有目标图像的目标域，在转换原 域中图像时，目标域中存在虚拟结果。 如果再次反转虚拟结果，则2次反转后的结果必须是原始图像。 因此，它需要两个生成器来完成转换任务。&lt;/p&gt;

&lt;p&gt;最近，在域到域更改之后，一些研究工作已经展示了 可采用用户输入以将所需方向效果？添加到生成结果的系统。 StarGAN [2]使用单个生成器和鉴别器通过域标签训练将输入图像灵活地转换为任何期望的目标域。 Ideepcolor [19]是作为一种系统引入的，该系统通过将用户所需的颜色作为蒙版将单色图像转换为彩色图像。 在这些工作中，与用户输入交互的图像变换已经表明，可以通过将载有用户输入的图像输入到生成器来学习用户输入。&lt;/p&gt;

&lt;h2 id=&#34;2-2-image-completion&#34;&gt;2.2. Image Completion&lt;/h2&gt;

&lt;p&gt;图像补全领域有两个主要挑战：1）填充图像中的删除区域，2）在修复区域中正确反映用户输入。 在之前的研究中，GAN系统探索了生成原来有擦除区域的完整图像的可能性[5]。 它使用来自U-net [13]结构的发生器并利用局部和全局鉴别器。 鉴别器分别确定在新填充的部分图像和完整的重建图像上是真实的还是假的。 Deepfillv1 [18]也使用矩形蒙版和全局和局部鉴别器模型来表明上下文关注层广泛地改善了性能。 然而，全局和局部鉴别器仍然在已修复部分的边界上产生尴尬的区域。&lt;/p&gt;

&lt;p&gt;在后续研究中Deepfillv2 [17]，引入了任意形状蒙版和SN-patchGAN，代替现有的矩形蒙版，用单个鉴别器代替全局和局部鉴别器。此外，还提出了学习遮挡区域特征的门控卷积层。此图层可以通过训练自动从数据中显示蒙版，这使网络能够在结果上反映用户输入的草图&lt;/p&gt;

&lt;p&gt;我们在下一节中描述的网络不仅允许使用草图而且还使用颜色数据作为编辑图像的输入。即使我们使用U-net结构而不是像Deepfillv1,2 [5,17]那样的粗-细网结构，我们的网络也可以生成高质量的结果，而无需复杂的训练计划，也不需要其他复杂的层。&lt;/p&gt;

&lt;h1 id=&#34;3-approach&#34;&gt;3. Approach&lt;/h1&gt;

&lt;p&gt;在本文中，我们描述了所提出的SC-FEGAN，一种基于神经网络的人脸图像编辑系统，并且还描述了用于制作输入批量数据的方法。该网络可以端到端地进行训练，并生成具有逼真纹理细节的高质量合成图像。在3.1节中，我们讨论了制作训练数据的方法。在3.2节中，我们描述了我们的网络结构和损失函数，它们允许从草图和颜色输入中提取特征，同时实现训练的稳定性。&lt;/p&gt;

&lt;p&gt;&lt;img src=&#34;figure2.png&#34; alt=&#34;figure2&#34; /&gt;
The color maps are generated by median color of segmented areas from using GFC [9].
图2.草图和颜色域数据集以及批处理的输入。 我们使用HED边缘检测器提取草图[16]。 使用GFC [9]，通过分割区域的中间颜色生成颜色图。 网络的输入包括不完整的图像，蒙版，草图，颜色和噪声。&lt;/p&gt;

&lt;h2 id=&#34;3-1-training-data&#34;&gt;3.1. Training Data&lt;/h2&gt;

&lt;p&gt;合适的训练数据是提高网络训练性能和增加对用户输入的响应性的非常重要的因素。为了训练我们的模型，我们在几个预处理步骤之后使用了CelebA-HQ [8]数据集，如下所述。我们首先随机选择2组29,000张用于训练的图像和1,000张用于测试的图像。在获得草图和颜色数据集之前，我们将图像的大小调整为512 x 512像素。&lt;/p&gt;

&lt;p&gt;为了更好地表达面部图像中眼睛的复杂性，我们使用基于眼睛位置的任意形状蒙版来训练网络。此外，我们通过使用任意形状的蒙版和面部分割GFC [9]创建了适当的草图域和颜色域。 这是一个至关重要的步骤，使我们的系统能够为用户输入手绘案例产生有说服力的结果。我们在输入数据中随机将蒙版应用于头发区域，因为它与脸部的其他部分相比具有不同的属性。我们在下面讨论更多细节。&lt;/p&gt;

&lt;p&gt;&lt;strong&gt;Free-form masking with eye-positions&lt;/strong&gt;
&lt;strong&gt;具有眼睛位置的任意形状蒙版&lt;/strong&gt;&lt;/p&gt;

&lt;p&gt;我们使用类似于Deepfillv2 [17]中提出的蒙版方法来制作不完整的图像。然而，当对面部图像进行训练时，我们随机应用一个以眼睛位置为起点的自由绘制的面具，以表达眼睛的复杂部分。我们还使用GFC[9]随机添加了头发蒙版。算法1中描述了细节。&lt;/p&gt;

&lt;p&gt;&lt;strong&gt;Sketch &amp;amp; Color domain&lt;/strong&gt;
&lt;strong&gt;草图和颜色域&lt;/strong&gt;&lt;/p&gt;

&lt;pre&gt;&lt;code&gt;-------------------------------------------------------------------------
Algorithm 1 Free-form masking with eye-positions
-------------------------------------------------------------------------
maxDraw, maxLine, maxAngle, maxLength are hyperparameters
GFCHair is the GFC for get hair mask of input image
Mask=zeros(inputSize,inputSize)
HairMask=GFCHair(IntputImage)
numLine=random.range(maxDraw)
for i=0 to numLine do
	startX = random.range(inputSize)
	startY = random.range(inputSize)
	startAngle = random.range(360)
	numV = random.range(maxLine)
	for j=0 to numV do
		angleP = random.range(-maxAngle,maxAngle)  
		if j is even then
			angle = startAngle+angleP
		else
			angle = startAngle+angleP+180
		end if
		length = random.range(maxLength)
		Draw a line on Mask from point (startX, startY)
		with angle and length.
		startX = startX + length * sin(angle)
		startY = stateY + length * cos(angle)
	end for
	Draw a line on Mask from eye postion randomly.
end for
Mask = Mask + HairMask (randomly)
---------------------------------------------------------------------------------------
&lt;/code&gt;&lt;/pre&gt;

&lt;p&gt;对于这部分，我们使用了类似于FaceShop [12]中使用的方法。但是，我们排除了将草图数据的位图转换为矢量图形的AutoTrace [15]。我们使用HED [16]边缘检测器生成与用户输入相对应的草图数据，以修改面部图像。之后，我们平滑了曲线并擦除了小边缘。为了创建颜色域数据，我们首先通过应用大小为3的中值滤波创建模糊图像，we first created blurred images by
applying a median filtering with size 3 followed by 20 application
of bilateral filter.然后应用双边滤波器来。之后，使用GFC [9]对面部进行分割，并将每个分割的部分替换为相应部分的中间中值median颜色。在为色域创建数据时，没有使用直方图均衡，目的是为了避免光反射和阴影造成的颜色污染。然而，不考虑光干涉引起的模糊，因为用户在草图域中表达脸部的所有部分更加共鸣，所以在从域数据创建草图时使用了直方图均衡。更具体地说，在直方图均衡之后，我们应用HED从图像中获得边缘。然后，我们平滑了曲线并擦除了小的对象（objects）。最后，我们将蒙版相乘，采用类似于先前任意形状蒙版的处理，以及彩色图像并获得彩色刷图像。有关我们数据的示例，请参见图2。&lt;/p&gt;

&lt;h2 id=&#34;3-2-network-architecture&#34;&gt;3.2. Network Architecture&lt;/h2&gt;

&lt;p&gt;受近期图像补全研究[5,17,12]的启发，我们的补全网络（即发生器）基于编码器 - 解码器架构，如U-net [13]，我们的鉴别网络基于SN-patchGAN [17]。我们的网络结构可产生高质量的合成结果，图像大小为512x 512，同时实现稳定和快速的训练。我们的网络也像其他网络一样同时训练生成器和鉴别器。生成器接收具有用户输入的不完整图像以在RGB通道中创建输出图像，并将输出图像的遮挡遮挡区域插入到不完整的输入图像中以创建完整图像。鉴别器接收完成的图像或原始图像（没有遮挡）以确定给定输入是真实的还是假的。在对抗训练中，鉴别器的额外用户输入也有助于提高性能。此外，我们发现与一般GAN损失不同的额外损失对于恢复大的擦除部分是有效的。我们的网络详情如下所示。&lt;/p&gt;

&lt;p&gt;&lt;img src=&#34;figure3.png&#34; alt=&#34;figure3&#34; /&gt;
 图3. SC-FEGAN的网络架构。 在输入和输出之外的所有卷积层之后应用LRN。 我们使用tanh作为生成器输出的激活函数。 我们使用SN卷积层[11]作为鉴别器。&lt;/p&gt;

&lt;p&gt;&lt;strong&gt;生成器&lt;/strong&gt;
  图3详细显示了我们的网络架构。我们的发生器基于U-net [10]，所有卷积层都使用门控卷积[17]，使用3x3大小的卷积核。在除了其他软门之外的特征映射卷积层之后应用局部信号归一化（LRN）[8]。 LRN应用于除输入和输出层之外的所有卷积层。我们的发生器的编码器接收大小为512 x512 x 9的输入张量：具有要被编辑的有移除区域的不完整RGB通道图像，描述被移除部分的结构的二进制草图，RGB颜色笔划图，二值蒙版和噪音（见图2）。编码器使用2个步幅的卷积核对输入进行7次下采样，然后在上采样之前进行膨胀卷积。&lt;br /&gt;
  解码器使用转置卷积进行上采样。然后，添加跳线连接以允许与具有相同空间分辨率的先前层进行连接。除了使用tanh函数的输出层之外，我们在每一层之后使用了leaky ReLU激活函数。总的来说，我们的生成器由16个卷积层组成，网络的输出是与输入（512 x 512）相同大小的的RGB图像。在将损失函数应用于输入图像之前，我们用输入图像替换了蒙版之外的剩余图像部分。这种替换允许生成器专门在编辑区域上进行训练。我们的生成器使用在PartialConv [10]中引入的损失函数训练：逐个像素损失，感知损失，风格损失和总方差损失。还使用通用GAN损失函数。&lt;/p&gt;

&lt;p&gt;&lt;strong&gt;鉴别器&lt;/strong&gt;&lt;/p&gt;

&lt;p&gt;我们的鉴别器具有SNPatchGAN [17]结构。与Deepfillv2 [17]不同，我们没有对GAN损失应用ReLu函数。我们还使用了3 x 3大小的卷积核并应用了梯度惩罚损失项。我们添加了一个额外的术语，以避免鉴别器输出接近零值的补丁。我们的整体损失函数如下所示：&lt;/p&gt;

&lt;p&gt;&lt;img src=&#34;m1.png&#34; alt=&#34;m1&#34; /&gt;
&lt;img src=&#34;m2.png&#34; alt=&#34;m2&#34; /&gt;&lt;/p&gt;

&lt;p&gt;我们的生成器用LG训练，鉴别器用LD训练。 D（I）是给定输入I的鉴别器的输出。在编辑诸如发型的大区域时，额外的损失，Lsytle和Lpercept是关键的。 每种损失的细节描述如下。 真实图像Igt与发生器Igen的输出之间的L1距离的Lper-pixel计算为
 &lt;img src=&#34;m3.png&#34; alt=&#34;m3&#34; /&gt;
其中，Na是特征a的元素个数，M是二元蒙版图，Igen是生成器的输出。 我们使用因子α&amp;gt; 1来增加擦除部分的损失的权重。 感知损失Lpercept也计算L=&amp;ndash;1距离，但是在使用在ImageNet上预先训练过的VGG-16 [14]将图像投影到特征空间之后。 它计算为
 &lt;img src=&#34;m4.png&#34; alt=&#34;m4&#34; /&gt;
这里， &lt;img src=&#34;m5.png&#34; alt=&#34;m5&#34; /&gt;是VGG-16 [14]的第q层的特征图，给定输入x，Icomp是Igen的完成图像，非擦除部分直接设置为真实图像。 q是从 VGG-16中的选定的图层，我们使用了pool1， pool2和pool3的层;。 样式损失使用Gram矩阵比较两个图像的内容。 我们计算风格损失为&lt;/p&gt;

&lt;p&gt;&lt;img src=&#34;m6.png&#34; alt=&#34;m6&#34; /&gt;&lt;/p&gt;

&lt;p&gt;其中&lt;img src=&#34;m7.png&#34; alt=&#34;m7&#34; /&gt; 是用于在VGG-16的每个特征图上执行自相关的Gram矩阵。 当特征具有形状&lt;img src=&#34;m8.png&#34; alt=&#34;m8&#34; /&gt; 时，Gram矩阵的输出具有形状 &lt;img src=&#34;m9.png&#34; alt=&#34;m9&#34; /&gt;&lt;/p&gt;

&lt;p&gt;&lt;img src=&#34;m10.png&#34; alt=&#34;m10&#34; /&gt; 是快速神经风格[7]建议的总变异损失，&lt;font color=&#34;red&#34;&gt;用于改善感知损失项下的棋盘伪影。&lt;/font&gt; 它计算为&lt;/p&gt;

&lt;p&gt;&lt;img src=&#34;m11.png&#34; alt=&#34;m11&#34; /&gt;&lt;/p&gt;

&lt;p&gt;&lt;img src=&#34;figure4.png&#34; alt=&#34;figure4&#34; /&gt;&lt;/p&gt;

&lt;p&gt;图4.当移除眼睛区域时，我们使用U-net（左）和粗 - 精网（右）的结果。&lt;/p&gt;

&lt;p&gt;&lt;img src=&#34;m12.png&#34; alt=&#34;m12&#34; /&gt;
其中R是擦除部分的区域。 WGANGP [4]损失用于改进训练并计算为&lt;/p&gt;

&lt;p&gt;&lt;img src=&#34;m13.png&#34; alt=&#34;m13&#34; /&gt;
这里，U是沿着  来自Icomp的鉴别器输入和Igt之间的直线 均匀采样的数据点。 在我们的案例中，这个术语对合成图像的质量至关重要。 我们用= 0
&lt;img src=&#34;m14.png&#34; alt=&#34;m14&#34; /&gt;&lt;/p&gt;

&lt;h1 id=&#34;4-results&#34;&gt;4. Results&lt;/h1&gt;

&lt;p&gt;在本节中，我们将消融研究与最近的相关工作进行比较，然后是面部编辑结果。 所有实验均在具有Tensorflow [1] v1.12，CUDA v10，Cudnn v7和Python 3的NVIDIA（R）Tesla（R）V100 GPU和Power9@2.3GHz CPU上执行。
测试，无论输入的大小和形状如何，分辨率为512 X 512 的图片，GPU上平均需要44ms，CPU上平均需要53ms，。 源代码和更多结果显示在&lt;a href=&#34;https://github.com/JoYoungjoo/SC-FEGAN。&#34; target=&#34;_blank&#34;&gt;https://github.com/JoYoungjoo/SC-FEGAN。&lt;/a&gt;&lt;/p&gt;

&lt;p&gt;&lt;a href=&#34;https://github.com/JoYoungjoo/SC-FEGAN&#34; target=&#34;_blank&#34;&gt;https://github.com/JoYoungjoo/SC-FEGAN&lt;/a&gt;.&lt;/p&gt;

&lt;h2 id=&#34;4-1-ablation-studies-and-comparisons&#34;&gt;4.1. Ablation Studies and Comparisons&lt;/h2&gt;

&lt;p&gt;&lt;img src=&#34;figure5.png&#34; alt=&#34;figure5&#34; /&gt;&lt;/p&gt;

&lt;p&gt;Figure 5. 在有和没有VGG 损失的网络训练的结果。在没有VGG 损失的情况下，我们遇到了和FaceShop 类似的问题[12].
 &lt;img src=&#34;figure6.png&#34; alt=&#34;figure6&#34; /&gt;
图6.与CelebA-HQ验证集上的Deepfillv1 [18]的定性比较。&lt;/p&gt;

&lt;p&gt;我们首先将我们的结果与Coarse-Refined结构网络和U-net结构网络进行了比较。在Deepfillv2 [17]中，它表明Coarse-Refined结构和上下文注意模块对于生成是有效的。但是，我们测试了Coarse-Refined结构网络，并注意到精炼阶段使输出模糊。我们发现其原因是因为精炼网络输出的L1损失总是小于粗网络。粗网络通过使用不完整输入生成恢复区域的粗略估计。然后将该粗略图像传递到精炼网络。这种设置允许精细网络学习地面实况和粗略恢复的不完整输入之间的转换。为了通过卷积运算实现这种效果，使输入数据变模糊 被用作其他更复杂训练方法的变通方法。它可以改善棋盘格，但需要大量的记忆/内存？和时间进行训练。图4显示了我们的系统关于粗细结构网络的结果。&lt;/p&gt;

&lt;p&gt;The system in FaceShop [12] has shown difficulty in
modifying the huge erased image like whole hair regions.
FaceShop [12]中的系统显示出难以修改像整个头发区域那样的巨大擦除的图像。&lt;/p&gt;

&lt;p&gt;&lt;img src=&#34;figure7.png&#34; alt=&#34;figure7&#34; /&gt;&lt;/p&gt;

&lt;p&gt;图7.来自我们系统的面部图像编辑结果。 它表明我们的系统可以正确地改变面部的形状和颜色。 它还表明它可以用于改变眼睛的颜色或擦除不必要的部分。 特别是右下角的两个结果表明我们的系统也可以用于新的发型修饰。&lt;/p&gt;

&lt;p&gt;由于感知和风格损失，我们的系统在这方面表现更好。 图5显示了有和没有VGG损失的结果。 我们还与最近的研究Deepfillv1 [18]进行了比较，其中发布了测试系统。 图6显示我们的系统在结构和形状质量方面使用任意形状的蒙版产生更好的结果。&lt;/p&gt;

&lt;h2 id=&#34;4-2-face-image-editing-and-restoration&#34;&gt;4.2. Face Image Editing and Restoration&lt;/h2&gt;

&lt;p&gt;图7显示了草图和颜色输入的各种结果。它表明我们的系统允许用户直观地编辑脸部图像功能，如发型，脸型，眼睛，嘴巴等。即使整个头发区域被删除，我们的系统一旦提供了用户草图它就能够产生适当的结果。用户可以使用草图和颜色直观地编辑图像，同时网络可以容忍小的绘图错误。用户可以通过输入草图和颜色直观地修改面部图像，以获得逼真地反映阴影和形状的合成图像。图9显示了验证数据集的一些结果，它显示即使用户进行了大量修改，用户也可以获得的高质量合成图像在提供足够的用户输入情况下。此外，为了检查网络对学习所用数据集的依赖性，我们尝试输入所有区域的擦除图像。与Deepfillv1[18]相比，Deepfillv1会产生模糊的脸部图像，但我们的SC-FEGAN会产生模糊的头发图像（参见图10）。这意味着，如果没有草图和颜色等附加信息，面部元素的形状和位置具有一定的依赖值。因此，除非在期望的方向上修复图像，否则不需要提供附加信息。此外，即使输入图像被完全擦除，我们的SC-FEGAN也可以在仅具有草图和彩色任意形状输入的情况下生成人脸图像（参见图10）。&lt;/p&gt;

&lt;h2 id=&#34;4-3-interesting-results&#34;&gt;4.3. Interesting results&lt;/h2&gt;

&lt;p&gt;由GAN生成的图像结果通常显示对训练数据集的高依赖性。 Deepfillv2 [17]使用相同的数据集CelebA-HQ，但仅使用真实图像来制作草图数据集。 在Faceshop [12]中，AutoTrace [15]删除了数据集图像中的小细节。 在我们的研究中，我们将HED应用于所有区域，并通过安排它来扩展遮蔽覆盖？遮盖区域，我们能够获得产生面部图像和耳环的特殊结果。 图8显示了这些选择的有趣结果。 这些例子表明，即使对于小输入，我们的网络也能够学习小细节并产生合理的结果。&lt;/p&gt;

&lt;h1 id=&#34;5-conclusions&#34;&gt;5. Conclusions&lt;/h1&gt;

&lt;p&gt;在本文中，我们提出了一种新颖的图像编辑系统，用于任意形状的蒙版，草图，颜色输入，它基于具有新颖GAN损失的端到端可训练生成网络。 我们发现，与其他研究相比，我们的网络架构和损失函数显著改善了修复效果。 我们基于celebA-HQ数据集的高分辨率图像对我们的系统进行了训练，并在许多情况下显示了各种成功和逼真的编辑结果。 我们已经证明，我们的系统能够一次性修改和恢复大区域，并且只需要用户付出最小的努力就可以产生高质量和逼真的结果。&lt;/p&gt;

&lt;p&gt;&lt;img src=&#34;figure8.png&#34; alt=&#34;figure8&#34; /&gt;
Figure 8. 我们的关于编辑耳环特殊 结果&lt;br /&gt;
 &lt;img src=&#34;figure9.png&#34; alt=&#34;figure9&#34; /&gt;
图9.我们关于面部修复的结果。 如果给出足够的输入信息，即使很多区域被删除，我们的系统也可以令人满意地恢复脸部。
 &lt;img src=&#34;figure10.png&#34; alt=&#34;figure10&#34; /&gt;
图10.关于全区域修复的结果。 在左侧，它显示Deepfillv1 [18]和SC-FEGAN关于完全擦除的图像的结果。 在右侧，它表明SC-FEGAN可以像翻译一样工作。 它只能通过草图和颜色输入生成面部图像。&lt;/p&gt;

&lt;p&gt;References
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&lt;li&gt;&lt;a href=&#34;https://github.com/gcushen/hugo-academic/issues&#34; target=&#34;_blank&#34;&gt;Request a feature or report a bug&lt;/a&gt;&lt;/li&gt;
&lt;li&gt;Updating? View the &lt;a href=&#34;https://sourcethemes.com/academic/docs/update/&#34; target=&#34;_blank&#34;&gt;Update Guide&lt;/a&gt; and &lt;a href=&#34;https://sourcethemes.com/academic/updates/&#34; target=&#34;_blank&#34;&gt;Release Notes&lt;/a&gt;&lt;/li&gt;
&lt;li&gt;Support development of Academic:

&lt;ul&gt;
&lt;li&gt;&lt;a href=&#34;https://paypal.me/cushen&#34; target=&#34;_blank&#34;&gt;Donate a coffee&lt;/a&gt;&lt;/li&gt;
&lt;li&gt;&lt;a href=&#34;https://www.patreon.com/cushen&#34; target=&#34;_blank&#34;&gt;Become a backer on Patreon&lt;/a&gt;&lt;/li&gt;
&lt;li&gt;&lt;a href=&#34;https://www.redbubble.com/people/neutreno/works/34387919-academic&#34; target=&#34;_blank&#34;&gt;Decorate your laptop or journal with an Academic sticker&lt;/a&gt;&lt;/li&gt;
&lt;li&gt;&lt;a href=&#34;https://academic.threadless.com/&#34; target=&#34;_blank&#34;&gt;Wear the T-shirt&lt;/a&gt;&lt;/li&gt;
&lt;/ul&gt;&lt;/li&gt;
&lt;/ul&gt;

&lt;p&gt;&lt;a href=&#34;https://github.com/gcushen/hugo-academic/&#34; target=&#34;_blank&#34;&gt;&lt;img src=&#34;https://raw.githubusercontent.com/gcushen/hugo-academic/master/academic.png&#34; alt=&#34;Screenshot&#34; /&gt;&lt;/a&gt;&lt;/p&gt;

&lt;p&gt;&lt;strong&gt;Key features:&lt;/strong&gt;&lt;/p&gt;

&lt;ul&gt;
&lt;li&gt;&lt;strong&gt;Page builder&lt;/strong&gt; - Create &lt;em&gt;anything&lt;/em&gt; with &lt;a href=&#34;https://sourcethemes.com/academic/docs/page-builder/&#34; target=&#34;_blank&#34;&gt;&lt;strong&gt;widgets&lt;/strong&gt;&lt;/a&gt; and &lt;a href=&#34;https://sourcethemes.com/academic/docs/writing-markdown-latex/&#34; target=&#34;_blank&#34;&gt;&lt;strong&gt;elements&lt;/strong&gt;&lt;/a&gt;&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;Edit any type of content&lt;/strong&gt; - Blog posts, publications, talks, slides, projects, and more!&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;Create content&lt;/strong&gt; in &lt;a href=&#34;https://sourcethemes.com/academic/docs/writing-markdown-latex/&#34; target=&#34;_blank&#34;&gt;&lt;strong&gt;Markdown&lt;/strong&gt;&lt;/a&gt;, &lt;a href=&#34;https://sourcethemes.com/academic/docs/jupyter/&#34; target=&#34;_blank&#34;&gt;&lt;strong&gt;Jupyter&lt;/strong&gt;&lt;/a&gt;, or &lt;a href=&#34;https://sourcethemes.com/academic/docs/install/#install-with-rstudio&#34; target=&#34;_blank&#34;&gt;&lt;strong&gt;RStudio&lt;/strong&gt;&lt;/a&gt;&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;Plugin System&lt;/strong&gt; - Fully customizable &lt;a href=&#34;https://sourcethemes.com/academic/themes/&#34; target=&#34;_blank&#34;&gt;&lt;strong&gt;color&lt;/strong&gt; and &lt;strong&gt;font themes&lt;/strong&gt;&lt;/a&gt;&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;Display Code and Math&lt;/strong&gt; - Code highlighting and &lt;a href=&#34;https://en.wikibooks.org/wiki/LaTeX/Mathematics&#34; target=&#34;_blank&#34;&gt;LaTeX math&lt;/a&gt; supported&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;Integrations&lt;/strong&gt; - &lt;a href=&#34;https://analytics.google.com&#34; target=&#34;_blank&#34;&gt;Google Analytics&lt;/a&gt;, &lt;a href=&#34;https://disqus.com&#34; target=&#34;_blank&#34;&gt;Disqus commenting&lt;/a&gt;, Maps, Contact Forms, and more!&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;Beautiful Site&lt;/strong&gt; - Simple and refreshing one page design&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;Industry-Leading SEO&lt;/strong&gt; - Help get your website found on search engines and social media&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;Media Galleries&lt;/strong&gt; - Display your images and videos with captions in a customizable gallery&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;Mobile Friendly&lt;/strong&gt; - Look amazing on every screen with a mobile friendly version of your site&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;Multi-language&lt;/strong&gt; - 15+ language packs including English, 中文, and Português&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;Multi-user&lt;/strong&gt; - Each author gets their own profile page&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;Privacy Pack&lt;/strong&gt; - Assists with GDPR&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;Stand Out&lt;/strong&gt; - Bring your site to life with animation, parallax backgrounds, and scroll effects&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;One-Click Deployment&lt;/strong&gt; - No servers. No databases. Only files.&lt;/li&gt;
&lt;/ul&gt;

&lt;h2 id=&#34;color-themes&#34;&gt;Color Themes&lt;/h2&gt;

&lt;p&gt;Academic comes with &lt;strong&gt;day (light) and night (dark) mode&lt;/strong&gt; built-in. Click the sun/moon icon in the top right of the &lt;a href=&#34;https://academic-demo.netlify.com/&#34; target=&#34;_blank&#34;&gt;Demo&lt;/a&gt; to see it in action!&lt;/p&gt;

&lt;p&gt;Choose a stunning color and font theme for your site. Themes are fully customizable and include:&lt;/p&gt;









  
  


&lt;div class=&#34;gallery&#34;&gt;

  
  
  
  
    
    
    
    
    
      
        
      
    
  &lt;a data-fancybox=&#34;gallery-gallery&#34; href=&#34;https://wormcode.github.io/post/getting-started/gallery/theme-1950s.png&#34; data-caption=&#34;1950s&#34;&gt;
  &lt;img src=&#34;https://wormcode.github.io/post/getting-started/gallery/theme-1950s_huaf5482f8cea0c5a703a328640e3b7509_21614_0x190_resize_lanczos_2.png&#34; alt=&#34;&#34;&gt;
  &lt;/a&gt;
  
    
    
    
    
    
      
        
      
    
  &lt;a data-fancybox=&#34;gallery-gallery&#34; href=&#34;https://wormcode.github.io/post/getting-started/gallery/theme-apogee.png&#34; data-caption=&#34;Apogee&#34;&gt;
  &lt;img src=&#34;https://wormcode.github.io/post/getting-started/gallery/theme-apogee_hu4b45d99db97150df01464c393bfd17d4_24119_0x190_resize_lanczos_2.png&#34; alt=&#34;&#34;&gt;
  &lt;/a&gt;
  
    
    
    
    
    
      
        
      
    
  &lt;a data-fancybox=&#34;gallery-gallery&#34; href=&#34;https://wormcode.github.io/post/getting-started/gallery/theme-coffee-playfair.png&#34; data-caption=&#34;Coffee theme with Playfair font&#34;&gt;
  &lt;img src=&#34;https://wormcode.github.io/post/getting-started/gallery/theme-coffee-playfair_hu446a8f670cc5622adcc77b97ba95f6c5_22462_0x190_resize_lanczos_2.png&#34; alt=&#34;&#34;&gt;
  &lt;/a&gt;
  
    
    
    
    
    
      
        
      
    
  &lt;a data-fancybox=&#34;gallery-gallery&#34; href=&#34;https://wormcode.github.io/post/getting-started/gallery/theme-cupcake.png&#34; data-caption=&#34;Cupcake&#34;&gt;
  &lt;img src=&#34;https://wormcode.github.io/post/getting-started/gallery/theme-cupcake_hueba8cfa8cfbc7543924fcbf387a99e92_23986_0x190_resize_lanczos_2.png&#34; alt=&#34;&#34;&gt;
  &lt;/a&gt;
  
    
    
    
    
    
      
        
      
    
  &lt;a data-fancybox=&#34;gallery-gallery&#34; href=&#34;https://wormcode.github.io/post/getting-started/gallery/theme-dark.png&#34; data-caption=&#34;Dark&#34;&gt;
  &lt;img src=&#34;https://wormcode.github.io/post/getting-started/gallery/theme-dark_hu1e8601ecc47f58eada7743fdcd709d3d_21456_0x190_resize_lanczos_2.png&#34; alt=&#34;&#34;&gt;
  &lt;/a&gt;
  
    
    
    
    
    
      
        
      
    
  &lt;a data-fancybox=&#34;gallery-gallery&#34; href=&#34;https://wormcode.github.io/post/getting-started/gallery/theme-default.png&#34; data-caption=&#34;Default&#34;&gt;
  &lt;img src=&#34;https://wormcode.github.io/post/getting-started/gallery/theme-default_huba6228b7bdf30e2f03f12ea91b2cba0d_21751_0x190_resize_lanczos_2.png&#34; alt=&#34;&#34;&gt;
  &lt;/a&gt;
  
    
    
    
    
    
      
        
      
    
  &lt;a data-fancybox=&#34;gallery-gallery&#34; href=&#34;https://wormcode.github.io/post/getting-started/gallery/theme-forest.png&#34; data-caption=&#34;Forest&#34;&gt;
  &lt;img src=&#34;https://wormcode.github.io/post/getting-started/gallery/theme-forest_hu4f093a1c683134431456584193ea41ee_21797_0x190_resize_lanczos_2.png&#34; alt=&#34;&#34;&gt;
  &lt;/a&gt;
  
    
    
    
    
    
      
        
      
    
  &lt;a data-fancybox=&#34;gallery-gallery&#34; href=&#34;https://wormcode.github.io/post/getting-started/gallery/theme-ocean.png&#34; data-caption=&#34;Ocean&#34;&gt;
  &lt;img src=&#34;https://wormcode.github.io/post/getting-started/gallery/theme-ocean_hu14831ccafc2219f30a7a096fa7617e01_21760_0x190_resize_lanczos_2.png&#34; alt=&#34;&#34;&gt;
  &lt;/a&gt;
  

  
&lt;/div&gt;

&lt;h2 id=&#34;ecosystem&#34;&gt;Ecosystem&lt;/h2&gt;

&lt;ul&gt;
&lt;li&gt;&lt;strong&gt;&lt;a href=&#34;https://github.com/sourcethemes/academic-admin&#34; target=&#34;_blank&#34;&gt;Academic Admin&lt;/a&gt;:&lt;/strong&gt; An admin tool to import publications from BibTeX or import assets for an offline site&lt;/li&gt;
&lt;li&gt;&lt;strong&gt;&lt;a href=&#34;https://github.com/sourcethemes/academic-scripts&#34; target=&#34;_blank&#34;&gt;Academic Scripts&lt;/a&gt;:&lt;/strong&gt; Scripts to help migrate content to new versions of Academic&lt;/li&gt;
&lt;/ul&gt;

&lt;h2 id=&#34;install&#34;&gt;Install&lt;/h2&gt;

&lt;p&gt;You can choose from one of the following four methods to install:&lt;/p&gt;

&lt;ul&gt;
&lt;li&gt;&lt;a href=&#34;https://sourcethemes.com/academic/docs/install/#install-with-web-browser&#34; target=&#34;_blank&#34;&gt;&lt;strong&gt;one-click install using your web browser (recommended)&lt;/strong&gt;&lt;/a&gt;&lt;/li&gt;
&lt;li&gt;&lt;a href=&#34;https://sourcethemes.com/academic/docs/install/#install-with-git&#34; target=&#34;_blank&#34;&gt;install on your computer using &lt;strong&gt;Git&lt;/strong&gt; with the Command Prompt/Terminal app&lt;/a&gt;&lt;/li&gt;
&lt;li&gt;&lt;a href=&#34;https://sourcethemes.com/academic/docs/install/#install-with-zip&#34; target=&#34;_blank&#34;&gt;install on your computer by downloading the &lt;strong&gt;ZIP files&lt;/strong&gt;&lt;/a&gt;&lt;/li&gt;
&lt;li&gt;&lt;a href=&#34;https://sourcethemes.com/academic/docs/install/#install-with-rstudio&#34; target=&#34;_blank&#34;&gt;install on your computer with &lt;strong&gt;RStudio&lt;/strong&gt;&lt;/a&gt;&lt;/li&gt;
&lt;/ul&gt;

&lt;p&gt;Then &lt;a href=&#34;https://sourcethemes.com/academic/docs/get-started/&#34; target=&#34;_blank&#34;&gt;personalize and deploy your new site&lt;/a&gt;.&lt;/p&gt;

&lt;h2 id=&#34;updating&#34;&gt;Updating&lt;/h2&gt;

&lt;p&gt;&lt;a href=&#34;https://sourcethemes.com/academic/docs/update/&#34; target=&#34;_blank&#34;&gt;View the Update Guide&lt;/a&gt;.&lt;/p&gt;

&lt;p&gt;Feel free to &lt;em&gt;star&lt;/em&gt; the project on &lt;a href=&#34;https://github.com/gcushen/hugo-academic/&#34; target=&#34;_blank&#34;&gt;Github&lt;/a&gt; to help keep track of &lt;a href=&#34;https://sourcethemes.com/academic/updates&#34; target=&#34;_blank&#34;&gt;updates&lt;/a&gt;.&lt;/p&gt;

&lt;h2 id=&#34;license&#34;&gt;License&lt;/h2&gt;

&lt;p&gt;Copyright 2016-present &lt;a href=&#34;https://georgecushen.com&#34; target=&#34;_blank&#34;&gt;George Cushen&lt;/a&gt;.&lt;/p&gt;

&lt;p&gt;Released under the &lt;a href=&#34;https://github.com/gcushen/hugo-academic/blob/master/LICENSE.md&#34; target=&#34;_blank&#34;&gt;MIT&lt;/a&gt; license.&lt;/p&gt;
</description>
    </item>
    
    <item>
      <title>An example journal article</title>
      <link>https://wormcode.github.io/publication/journal-article/</link>
      <pubDate>Tue, 01 Sep 2015 00:00:00 +0000</pubDate>
      
      <guid>https://wormcode.github.io/publication/journal-article/</guid>
      <description>&lt;div class=&#34;alert alert-note&#34;&gt;
  &lt;div&gt;
    Click the &lt;em&gt;Cite&lt;/em&gt; button above to demo the feature to enable visitors to import publication metadata into their reference management software.
  &lt;/div&gt;
&lt;/div&gt;

&lt;div class=&#34;alert alert-note&#34;&gt;
  &lt;div&gt;
    Click the &lt;em&gt;Slides&lt;/em&gt; button above to demo Academic&amp;rsquo;s Markdown slides feature.
  &lt;/div&gt;
&lt;/div&gt;

&lt;p&gt;Supplementary notes can be added here, including &lt;a href=&#34;https://sourcethemes.com/academic/docs/writing-markdown-latex/&#34; target=&#34;_blank&#34;&gt;code and math&lt;/a&gt;.&lt;/p&gt;
</description>
    </item>
    
    <item>
      <title>An example conference paper</title>
      <link>https://wormcode.github.io/publication/conference-paper/</link>
      <pubDate>Mon, 01 Jul 2013 00:00:00 +0000</pubDate>
      
      <guid>https://wormcode.github.io/publication/conference-paper/</guid>
      <description>&lt;div class=&#34;alert alert-note&#34;&gt;
  &lt;div&gt;
    Click the &lt;em&gt;Cite&lt;/em&gt; button above to demo the feature to enable visitors to import publication metadata into their reference management software.
  &lt;/div&gt;
&lt;/div&gt;

&lt;div class=&#34;alert alert-note&#34;&gt;
  &lt;div&gt;
    Click the &lt;em&gt;Slides&lt;/em&gt; button above to demo Academic&amp;rsquo;s Markdown slides feature.
  &lt;/div&gt;
&lt;/div&gt;

&lt;p&gt;Supplementary notes can be added here, including &lt;a href=&#34;https://sourcethemes.com/academic/docs/writing-markdown-latex/&#34; target=&#34;_blank&#34;&gt;code and math&lt;/a&gt;.&lt;/p&gt;
</description>
    </item>
    
  </channel>
</rss>
