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Scheduling multiprocessor tasks with genetic algorithms

dc.citation.issue0296pt_BR
dc.creatorCorrêa, Ricardo Cordeiro
dc.creatorFerreira, Afonso
dc.creatorRebreyend, Pascal
dc.date.accessioned2017-08-04T13:02:36Z
dc.date.available2026-05-16T03:03:57Z
dc.date.issued1996-12-31
dc.description.abstractIn the multíprocessor schedulíng problem a given program is to be scheduled in a given multiprocessor system such that the program 's execution time is minimized. This problem being very hard to solve exactly, many heuristic methods for finding a suboptimal schedule exist. We propose a new combined approach, where a genetic algorithm is improved with the introduction of some knowledge about the scheduling problem represented by the use of a list heuristic in the crossover and mutatíon genetic operations. This knowledge-augmented genetic approach is empirically compared with a "pure" genetic algorithm and with a "pure" list heuristic, both from the literature. Results of the experiments carried out with synthetic instances of the scheduling problem show that our knowledge-augmented algorithm produces much better results in terms of quality of solutions, although being slower in terms of execution time.en
dc.embargo.termsabertopt_BR
dc.identifier.citationCORRÊA, R. C.; FERREIRA, A.; REBREYEND, P. Scheduling multiprocessor tasks with genetic algorithms. Rio de Janeiro: NCE, UFRJ, 1996. 27 p. (Relatório Técnico, 02/96)pt_BR
dc.identifier.urihttp://hdl.handle.net/11422/2592
dc.languageengpt_BR
dc.publisher.countryBrasilpt_BR
dc.publisher.departmentInstituto Tércio Pacitti de Aplicações e Pesquisas Computacionaispt_BR
dc.relation.ispartofRelatório Técnico NCEpt_BR
dc.rightsAcesso Abertopt_BR
dc.subjectMultiprocessadorespt_BR
dc.subjectEscalonamento multidimensionalpt_BR
dc.subject.cnpqCNPQ::CIENCIAS EXATAS E DA TERRA::CIENCIA DA COMPUTACAO::METODOLOGIA E TECNICAS DA COMPUTACAOpt_BR
dc.titleScheduling multiprocessor tasks with genetic algorithmsen
dc.typeRelatóriopt_BR

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