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Evolutionary algorithms for solving multi -objective problems

معرفی کتاب «Evolutionary algorithms for solving multi -objective problems» نوشتهٔ Carlos Coello Coello, Gary B. Lamont, David A. van Veldhuizen, Carlos A. Coello Coello, David A. Van Veldhuizen، منتشرشده توسط نشر Springer در سال 2007. این کتاب در فرمت pdf، زبان انگلیسی ارائه شده است. «Evolutionary algorithms for solving multi -objective problems» در دستهٔ بدون دسته‌بندی قرار دارد.

Linear Genetic Programming presents a variant of Genetic Programming that evolves imperative computer programs as linear sequences of instructions, in contrast to the more traditional functional expressions or syntax trees. Typical GP phenomena, such as non-effective code, neutral variations, and code growth are investigated from the perspective of linear GP. This book serves as a reference for researchers; it includes sufficient introductory material for students and newcomers to the field. 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.
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