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Reinforcement Learning for Optimal Feedback Control

A Lyapunov-Based Approach

Produktform: Buch / Einband - flex.(Paperback)

develops model-based and data-driven reinforcement learning methods for solving optimal control problems in nonlinear deterministic dynamical systems. In order to achieve learning under uncertainty, data-driven methods for identifying system models in real-time are also developed. The book illustrates the advantages gained from the use of a model and the use of previous experience in the form of recorded data through simulations and experiments. The book’s focus on deterministic systems allows for an in-depth Lyapunov-based analysis of the performance of the methods described during the learning phase and during execution. weiterlesen

Dieser Artikel gehört zu den folgenden Serien

Sprache(n): Englisch

ISBN: 978-3-030-08689-3 / 978-3030086893 / 9783030086893

Verlag: Springer International Publishing

Erscheinungsdatum: 26.12.2018

Seiten: 293

Auflage: 1

Autor(en): Rushikesh Kamalapurkar, Patrick Walters, Joel Rosenfeld, Warren Dixon

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