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      Reinforcement Learning: An Introduction

      10 in stock

      Firm sale: non returnable item
      SKU 9780262039246 Categories ,
      Select Guide Rating
      The significantly expanded and updated new edition of a widely used text on reinforcement learning, one of the most active research areas in artificial intelligence.

      Reinforcement learning, one of the most active research areas in artificial intelligence, is a computa...

      £95.00

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      Description

      Product ID:9780262039246
      Product Form:Hardback
      Country of Manufacture:US
      Series:Reinforcement Learning
      Title:Reinforcement Learning
      Subtitle:An Introduction
      Authors:Author: Andrew G. Barto, Richard S. Sutton
      Page Count:552
      Subjects:Machine learning, Machine learning
      Description:Select Guide Rating
      The significantly expanded and updated new edition of a widely used text on reinforcement learning, one of the most active research areas in artificial intelligence.

      Reinforcement learning, one of the most active research areas in artificial intelligence, is a computational approach to learning whereby an agent tries to maximize the total amount of reward it receives while interacting with a complex, uncertain environment. In Reinforcement Learning, Richard Sutton and Andrew Barto provide a clear and simple account of the field''s key ideas and algorithms. This second edition has been significantly expanded and updated, presenting new topics and updating coverage of other topics.

      Like the first edition, this second edition focuses on core online learning algorithms, with the more mathematical material set off in shaded boxes. Part I covers as much of reinforcement learning as possible without going beyond the tabular case for which exact solutions can be found. Many algorithms presented in this part are new to the second edition, including UCB, Expected Sarsa, and Double Learning. Part II extends these ideas to function approximation, with new sections on such topics as artificial neural networks and the Fourier basis, and offers expanded treatment of off-policy learning and policy-gradient methods. Part III has new chapters on reinforcement learning''s relationships to psychology and neuroscience, as well as an updated case-studies chapter including AlphaGo and AlphaGo Zero, Atari game playing, and IBM Watson''s wagering strategy. The final chapter discusses the future societal impacts of reinforcement learning.


      Imprint Name:MIT Press
      Publisher Name:MIT Press Ltd
      Country of Publication:GB
      Publishing Date:2018-11-13

      Additional information

      Weight1180 g
      Dimensions187 × 236 × 33 mm