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Self-Adaptive Heuristics for Evolutionary Computation

von Oliver Kramer
Hardcover - 9783540692805
106,99 €
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Softcover - 9783642088780
106,99 €

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Weitere Formate

Softcover - 9783642088780
106,99 €

Beschreibung

Evolutionary algorithms are successful biologically inspired meta-heuristics. Their success depends on adequate parameter settings. The question arises: how can evolutionary algorithms learn parameters automatically during the optimization? Evolution strategies gave an answer decades ago: self-adaptation. Their self-adaptive mutation control turned out to be exceptionally successful. But nevertheless self-adaptation has not achieved the attention it deserves.

This book introduces various types of self-adaptive parameters for evolutionary computation. Biased mutation for evolution strategies is useful for constrained search spaces. Self-adaptive inversion mutation accelerates the search on combinatorial TSP-like problems. After the analysis of self-adaptive crossover operators the book concentrates on premature convergence of self-adaptive mutation control at the constraint boundary. Besides extensive experiments, statistical tests and some theoretical investigations enrich the analysis of the proposed concepts.

Details

Verlag Springer Berlin
Ersterscheinung 19. August 2008
Maße 23.5 cm x 15.5 cm
Gewicht 465 Gramm
Format Hardcover
ISBN-13 9783540692805
Seiten 182

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