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Integral And Inverse Reinforcement Learning For Optimal Control Systems And Games eBook

by Frank L. Lewis, Bosen Lian, Bahare Kiumarsi, Hamidreza Modares e Wenqian Xue
language: english
Publisher: Springer Nature Switzerland, March of 2024 ‧
158,34€
142,51€
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Integral and Inverse Reinforcement Learning for Optimal Control Systems and Games develops its specific learning techniques, motivated by application to autonomous driving and microgrid systems, with breadth and depth: integral reinforcement learning (RL) achieves model-free control without system estimation compared with system identification methods and their inevitable estimation errors; novel inverse RL methods fill a gap that will help them to attract readers interested in finding data-driven model-free solutions for inverse optimization and optimal control, imitation learning and autonomous driving among other areas.

 

Graduate students will find that this book offers a thorough introduction to integral and inverse RL for feedback control related to optimal regulation and tracking, disturbance rejection, and multiplayer and multiagent systems. For researchers, it provides a combination of theoretical analysis, rigorous algorithms, and a wide-ranging selection of examples. The book equips practitioners working in various domains - aircraft, robotics, power systems, and communication networks among them - with theoretical insights valuable in tackling the real-world challenges they face.

Integral And Inverse Reinforcement Learning For Optimal Control Systems And Games

by Frank L. Lewis, Bosen Lian, Bahare Kiumarsi, Hamidreza Modares e Wenqian Xue

Property Description
ISBN: 9783031452529
Publisher: Springer Nature Switzerland
Release Date: March of 2024
Language: English
Format: eBook
File Format and Compatibility:
Collection: Advances In Industrial Control
Categories: eBooks in English > Science > Mathematics
eBooks in English > Computing > Operating Systems and Networks
EAN: 9783031452529
Acessibilidade: Ver características de acessibilidade indicadas pelo editor