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A hybrid genetic algorithm for the single machine scheduling problem with sequence-dependent setup times
Authors:A. Sioud  M. Gravel
Affiliation:a Département d'Informatique et de mathématique, Université du Québec à Chicoutimi, 555 Boulevard de l'Université, Chicoutimi, Québec, Canada G7H 2B1
b Département Des Sciences économiques et gestion, Université du Québec à Chicoutimi, 555 Boulevard de l'Université, Chicoutimi, Québec, Canada G7H 2B1
Abstract:
This paper presents a hybrid approach based on the integration between a genetic algorithm (GA) and concepts from constraint programming, multi-objective evolutionary algorithms and ant colony optimization for solving a scheduling problem. The main contributions are the integration of these concepts in a GA crossover operator. The proposed methodology is applied to a single machine scheduling problem with sequence-dependent setup times for the objective of minimizing the total tardiness. A sensitivity analysis of the hybrid approach is carried out to compare the performance of the GA and the hybrid genetic algorithm (HGA) approaches on different benchmarks from the literature. The numerical experiments demonstrate the HGA efficiency and effectiveness which generates solutions that approach those of the known reference sets and improves several lower bounds.
Keywords:Scheduling   Genetic algorithm   Hybrid metaheuristics   Total tardiness   Sequence-dependent setup times
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