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Deep Reinforcement Learning with Guaranteed Performance: A Lyapunov-Based Approach (Studies in Systems, Decision and Control Book 265)

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Management number 231882632 Release Date 2026/06/18 List Price US$35.58 Model Number 231882632
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This book discusses methods and algorithms for the near-optimal adaptive control of nonlinear systems, including the corresponding theoretical analysis and simulative examples, and presents two innovative methods for the redundancy resolution of redundant manipulators with consideration of parameter uncertainty and periodic disturbances.It also reports on a series of systematic investigations on a near-optimal adaptive control method based on the Taylor expansion, neural networks, estimator design approaches, and the idea of sliding mode control, focusing on the tracking control problem of nonlinear systems under different scenarios. The book culminates with a presentation of two new redundancy resolution methods; one addresses adaptive kinematic control of redundant manipulators, and the other centers on the effect of periodic input disturbance on redundancy resolution.Each self-contained chapter is clearly written, making the book accessible to graduate students as well as academic and industrial researchers in the fields of adaptive and optimal control, robotics, and dynamic neural networks. Read more

ASIN B0818N7942
XRay Not Enabled
ISBN13 978-3030333843
Edition 1st ed. 2020
Language English
File size 61.8 MB
Page Flip Enabled
Publisher Springer
Word Wise Not Enabled
Print length 458 pages
Accessibility Learn more
Screen Reader Supported
Part of series Studies in Systems, Decision and Control
Publication date November 9, 2019
Enhanced typesetting Enabled

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