On the efficiency of a genetic algorithm for the multiprocessor scheduling problem
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In the multiprocessor scheduling 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. An efficient genetic algorithm which introduces some knowledge about the scheduling problem represented by the use of a list heuristic in the crossover and mutation genetic operations was recently proposed [3] in this paper we investigate the efficiency of this genetic algorithm from a theoretical point of view. In particular , we demonstrate the ability of the knowledge-augmented crossover operator to generate all the space of feasible solutions.
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CORRĂA, R. C. On the efficiency of a genetic algorithm for the multiprocessor scheduling problem. Rio de Janeiro: NCE, UFRJ, 1997. 14 p. (RelatĂłrio TĂ©cnico, 07/97)
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