H. M. Schwartz Schwartz Multi-Agent Machine Learning

Multi-Agent Machine Learning

von H. M. Schwartz

A Reinforcement Approach

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Beschreibung

The book begins with a chapter on traditional methods ofsupervised learning, covering recursive least squares learning,mean square error methods, and stochastic approximation. Chapter 2covers single agent reinforcement learning. Topics include learningvalue functions, Markov games, and TD learning with eligibilitytraces. Chapter 3 discusses two player games including two playermatrix games with both pure and mixed strategies. Numerousalgorithms and examples are presented. Chapter 4 covers learning inmulti-player games, stochastic games, and Markov games, focusing onlearning multi-player grid games--two player grid games,Q-learning, and Nash Q-learning. Chapter 5 discusses differentialgames, including multi player differential games, actor critiquestructure, adaptive fuzzy control and fuzzy interference systems,the evader pursuit game, and the defending a territory games.Chapter 6 discusses new ideas on learning within robotic swarms andthe innovative idea of the evolution of personality traits. * Framework for understanding a variety of methods andapproaches in multi-agent machine learning. * Discusses methods of reinforcement learning such as anumber of forms of multi-agent Q-learning * Applicable to research professors and graduatestudents studying electrical and computer engineering, computerscience, and mechanical and aerospace engineering

Autor*in

H. M. Schwartz

Themen in »Multi-Agent Machine Learning«

Computational & Graphical Statistics Drahtlose Kommunikation Electrical & Electronics Engineering Elektrotechnik u. Elektronik Intelligent Systems & Agents Intelligente Systeme u. Agenten Maschinelles Lernen Mobile & Wireless Communications Rechnergestützte u. graphische Statistik Statistics Statistik

Stimmen zu »Multi-Agent Machine Learning«

"This is an interesting book both as research reference as well as teaching material for Master and PhD students." (Zentralblatt MATH, 1 April 2015)
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Details

ISBN: 9781118884485
Verlag: John Wiley & Sons
Erscheinung: 26.08.2014

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