Por favor, use este identificador para citar o enlazar este ítem: http://repositoriodigital.ipn.mx/handle/123456789/14554
Título : Building General Hyper-Heuristics for Multi-Objective Cutting Stock Problems
Otros títulos : Construyendo híper-heurísticas generales para problemas de corte multi-objetivo
Autor : Juan Carlos, Gómez
Hugo, Terashima-Marín
Palabras clave : Keywords: Hyper-heuristics, multi-objective, optimization, evolutionary computation, cutting problems.
Fecha de publicación : 31-ago-2012
Editorial : Computación y Sistemas;Vol. 16 No. 3
Citación : Computación y Sistemas;Vol. 16 No. 3
Citación : Computación y Sistemas;Vol. 16 No. 3
Resumen : Abstract: In this article we build multi-objective hyperheuristics (MOHHs) using the multi-objective evolutionary algorithm NSGA-II for solving irregular 2D cutting stock problems under a bi-objective minimization schema, having a trade-off between the number of sheets used to fit a finite number of pieces and the time required to perform the placement of these pieces. We solve this problem using a multiobjective variation of hyper-heuristics called MOHH, whose main idea consists of finding a set of simple heuristics which can be combined to find a general solution, where a single heuristic is applied depending on the current condition of the problem instead of applying a unique single heuristic during the whole placement process. MOHHs are built after going through a learning process using the NSGA-II, which evolves combinations of condition-action rules producing at the end a set of Pareto-optimal MOHHs. We test the approximated MOHHs on several sets of benchmark problems and present the results.
URI : http://www.repositoriodigital.ipn.mx/handle/123456789/14554
ISSN : 1405-5546
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