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Computational Intelligence for Optimization

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  • © 1997

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Table of contents (11 chapters)

Keywords

About this book

The field of optimization is interdisciplinary in nature, and has been making a significant impact on many disciplines. As a result, it is an indispensable tool for many practitioners in various fields. Conventional optimization techniques have been well established and widely published in many excellent textbooks. However, there are new techniques, such as neural networks, simulated anneal­ ing, stochastic machines, mean field theory, and genetic algorithms, which have been proven to be effective in solving global optimization problems. This book is intended to provide a technical description on the state-of-the-art development in advanced optimization techniques, specifically heuristic search, neural networks, simulated annealing, stochastic machines, mean field theory, and genetic algorithms, with emphasis on mathematical theory, implementa­ tion, and practical applications. The text is suitable for a first-year graduate course in electrical and computer engineering, computer science, and opera­ tional research programs. It may also be used as a reference for practicing engineers, scientists, operational researchers, and other specialists. This book is an outgrowth of a couple of special topic courses that we have been teaching for the past five years. In addition, it includes many results from our inter­ disciplinary research on the topic. The aforementioned advanced optimization techniques have received increasing attention over the last decade, but relatively few books have been produced.

Authors and Affiliations

  • Department of Electrical and Computer Engineering, New Jersey Institute of Technology, Newark, USA

    Nirwan Ansari, Edwin Hou

Bibliographic Information

  • Book Title: Computational Intelligence for Optimization

  • Authors: Nirwan Ansari, Edwin Hou

  • DOI: https://doi.org/10.1007/978-1-4615-6331-0

  • Publisher: Springer New York, NY

  • eBook Packages: Springer Book Archive

  • Copyright Information: Springer Science+Business Media New York 1997

  • Hardcover ISBN: 978-0-7923-9838-7Published: 31 December 1996

  • Softcover ISBN: 978-1-4613-7907-2Published: 05 November 2012

  • eBook ISBN: 978-1-4615-6331-0Published: 06 December 2012

  • Edition Number: 1

  • Number of Pages: XII, 225

  • Topics: Artificial Intelligence, Operations Research/Decision Theory

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