Output Feedback Reinforcement Learning Control for Linear Systems

£129.50

Output Feedback Reinforcement Learning Control for Linear Systems

Cybernetics and systems theory Optimization Automatic control engineering

Authors: Syed Ali Asad Rizvi, Zongli Lin

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Collection: Control Engineering

Language: English

Published by: Birkhauser

Published on: 29th November 2022

Format: LCP-protected ePub

Size: 24 Mb

ISBN: 9783031158582


Overview

This monograph explores the analysis and design of model-free optimal control systems based on reinforcement learning (RL) theory, presenting new methods that overcome recent challenges faced by RL. New developments in the design of sensor data efficient RL algorithms are demonstrated that not only reduce the requirement of sensors by means of output feedback, but also ensure optimality and stability guarantees. A variety of practical challenges are considered, including disturbance rejection, control constraints, and communication delays. Ideas from game theory are incorporated to solve output feedback disturbance rejection problems, and the concepts of low gain feedback control are employed to develop RL controllers that achieve global stability under control constraints.

Target Audience

Output Feedback Reinforcement Learning Control for Linear Systems will be a valuable reference for graduate students, control theorists working on optimal control systems, engineers, and applied mathematicians.

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