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TEXPLORE: Temporal Difference Reinforcement Learning for Robots and Time-Constrained Domains

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  • Latest research on Temporal Difference Reinforcement Learning for Robots
  • Focuses on applying Reinforcement Learning to real-world problems, particularly learning on robots
  • Presents the model-based Reinforcement Learning algorithm developed by the authors group
  • Written by an expert in the field

Part of the book series: Studies in Computational Intelligence (SCI, volume 503)

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Table of contents (8 chapters)

  1. Front Matter

    Pages 1-11
  2. Introduction

    • Todd Hester
    Pages 1-9
  3. Background and Problem Specification

    • Todd Hester
    Pages 11-23
  4. Real Time Architecture

    • Todd Hester
    Pages 25-34
  5. The TEXPLORE Algorithm

    • Todd Hester
    Pages 35-49
  6. Empirical Evaluation

    • Todd Hester
    Pages 51-84
  7. Further Examination of Exploration

    • Todd Hester
    Pages 85-119
  8. Related Work

    • Todd Hester
    Pages 121-135
  9. Discussion and Conclusion

    • Todd Hester
    Pages 137-147
  10. Back Matter

    Pages 149-164

About this book

This book presents and develops new reinforcement learning methods that enable fast and robust learning on robots in real-time.

Robots have the potential to solve many problems in society, because of their ability to work in dangerous places doing necessary jobs that no one wants or is able to do. One barrier to their widespread deployment is that they are mainly limited to tasks where it is possible to hand-program behaviors for every situation that may be encountered. For robots to meet their potential, they need methods that enable them to learn and adapt to novel situations that they were not programmed for. Reinforcement learning (RL) is a paradigm for learning sequential decision making processes and could solve the problems of learning and adaptation on robots. This book identifies four key challenges that must be addressed for an RL algorithm to be practical for robotic control tasks. These RL for Robotics Challenges are: 1) it must learn in very few samples; 2) it must learn in domains with continuous state features; 3) it must handle sensor and/or actuator delays; and 4) it should continually select actions in real time. This book focuses on addressing all four of these challenges. In particular, this book is focused on time-constrained domains where the first challenge is critically important. In these domains, the agent’s lifetime is not long enough for it to explore the domains thoroughly, and it must learn in very few samples.

Authors and Affiliations

  • , Department of Computer Science, University of Texas at Austin, Austin, USA

    Todd Hester

Bibliographic Information

  • Book Title: TEXPLORE: Temporal Difference Reinforcement Learning for Robots and Time-Constrained Domains

  • Authors: Todd Hester

  • Series Title: Studies in Computational Intelligence

  • DOI: https://doi.org/10.1007/978-3-319-01168-4

  • Publisher: Springer Cham

  • eBook Packages: Engineering, Engineering (R0)

  • Copyright Information: Springer International Publishing Switzerland 2013

  • Hardcover ISBN: 978-3-319-01167-7Published: 04 July 2013

  • Softcover ISBN: 978-3-319-37510-6Published: 24 September 2016

  • eBook ISBN: 978-3-319-01168-4Published: 22 June 2013

  • Series ISSN: 1860-949X

  • Series E-ISSN: 1860-9503

  • Edition Number: 1

  • Number of Pages: XIV, 165

  • Number of Illustrations: 55 illustrations in colour

  • Topics: Computational Intelligence, Image Processing and Computer Vision, Robotics and Automation

Buy it now

Buying options

eBook USD 84.99
Price excludes VAT (USA)
  • Available as PDF
  • Read on any device
  • Instant download
  • Own it forever
Hardcover Book USD 109.99
Price excludes VAT (USA)
  • Durable hardcover edition
  • Dispatched in 3 to 5 business days
  • Free shipping worldwide - see info

Tax calculation will be finalised at checkout

Other ways to access