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商品詳細
Reinforcement Learning for Optimal Feedback Control: A Lyapunov-Based Approach. Softcover reprint of the original 1st ed. 2018
・ISBN 978-3-030-08689-3 paper EUR 159.99
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| 著者・編者 | Kamalapurkar, Rushikesh / Walters, Patrick / Rosenfeld, Joel / Dixon, Warren, |
|---|---|
| シリーズ | (Communications and Control Engineering) |
| 出版社 | (Springer Nature Switzerland AG, SZ) |
| 出版年月 | 2018 |
| ページ数 | 293 pp. |
| 言語 | ENG |
| ニュース番号 | <A02-71066> |
解説
To yield an approximate optimal controller, the authors focus on theories and methods that fall under the umbrella of actor-critic methods for machine learning. They concentrate on establishing stability during the learning phase and the execution phase, and adaptive model-based and data-driven reinforcement learning, to assist readers in the learning process, which typically relies on instantaneous input-output measurements.
This monograph provides academic researchers with backgrounds in diverse disciplines from aerospace engineering to computer science, who are interested in optimal reinforcement learning functional analysis and functional approximation theory, with a good introduction to the use of model-based methods. The thorough treatment of an advanced treatment to control will also interest practitioners working in the chemical-process and power-supply industry.