Solving multi-objective problems is an evolving effort, and computer science and other related disciplines have given rise to many powerful deterministic and stochastic techniques for addressing these large-dimensional optimization problems. Evolutionary algorithms are one such generic stochastic approach that has proven to be successful and widely applicable in solving both single-objective and multi-objective problems. This textbook is a second edition of Evolutionary Algorithms for Solving Multi-Objective Problems, significantly expanded and adapted for the classroom. The various features of multi-objective evolutionary algorithms are presented here in an innovative and student-friendly fashion, incorporating state-of-the-art research. The book disseminates the application of evolutionary algorithm techniques to a variety of practical problems, including test suites with associated performance based on a variety of appropriate metrics, as well as serial and parallel algorithm implementations.
Carlos Coello Coello & Gary B. Lamont
Evolutionary Algorithms for Solving Multi-Objective Problems [PDF ebook]
Evolutionary Algorithms for Solving Multi-Objective Problems [PDF ebook]
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语言 英语 ● 格式 PDF ● ISBN 9780387367972 ● 出版者 Springer US ● 发布时间 2007 ● 下载 6 时 ● 货币 EUR ● ID 6554086 ● 复制保护 Adobe DRM
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