Computational Intelligence: Methods and Techniques Softcover reprint of hardcover 1st ed. 2008 Edition

Computational Intelligence: Methods and Techniques Softcover reprint of hardcover 1st ed. 2008 Edition book cover

Computational Intelligence: Methods and Techniques Softcover reprint of hardcover 1st ed. 2008 Edition

Author(s): Leszek Rutkowski (Author)

  • Publisher: Springer
  • Publication Date: 19 Oct. 2010
  • Edition: Softcover reprint of hardcover 1st ed. 2008
  • Language: English
  • Print length: 528 pages
  • ISBN-10: 3642095151
  • ISBN-13: 9783642095153

Book Description

This quite simply superb book focuses on various techniques of computational intelligence, both single ones and those which form hybrid methods. These techniques are today commonly applied to issues of artificial intelligence, for example in the processing of speech and natural language, and in building expert systems and robots. The first part of the book presents methods of knowledge representation using different techniques, namely the rough sets, type-1 fuzzy sets and type-2 fuzzy sets. Next up, various neural network architectures are presented and their learning algorithms are derived. Then, the family of evolutionary algorithms is discussed, in particular the classical genetic algorithm, evolutionary strategies and genetic programming, including connections between these techniques and neural networks and fuzzy systems. In the last part of the book, various methods of data partitioning and algorithms of automatic data clustering are given and new neuro-fuzzy architectures are studied and compared.

Editorial Reviews

From the Back Cover

This book focuses on various techniques of computational intelligence, both single ones and those which form hybrid methods. Those techniques are today commonly applied issues of artificial intelligence, e.g. to process speech and natural language, build expert systems and robots. The first part of the book presents methods of knowledge representation using different techniques, namely the rough sets, type-1 fuzzy sets and type-2 fuzzy sets. Next various neural network architectures are presented and their learning algorithms are derived. Moreover, the family of evolutionary algorithms is discussed, in particular the classical genetic algorithm, evolutionary strategies and genetic programming, including connections between these techniques and neural networks and fuzzy systems. In the last part of the book, various methods of data partitioning and algorithms of automatic data clustering are given and new neuro-fuzzy architectures are studied and compared. This well-organized modern approach to methods and techniques of intelligent calculations includes examples and exercises in each chapter and a preface by Jacek Zurada, president of IEEE Computational Intelligence Society (2004-05).

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