结合禁忌搜索和遗传算法的多智能体系统求解柔性作业车间问题

Ameni Azzouz, M. Ennigrou, Jlifi Boutheina, K. Ghédira
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引用次数: 13

摘要

柔性作业车间问题(FJSP)是经典作业车间调度问题的一个重要扩展,因为每个操作都可以由一组资源来处理,并且处理时间取决于所使用的资源。目标是最小化制作时间,即完成所有作业所需的时间。本研究旨在提出一种利用多智能体系统来解决FJSP问题的新方法。该模型结合了基于禁忌搜索(TS)元启发式的局部优化方法和基于遗传算法(GA)的全局优化方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Combining Tabu Search and Genetic Algorithm in a Multi-agent System for Solving Flexible Job Shop Problem
The Flexible Job Shop problem (FJSP) is an important extension of the classical job shop scheduling problem, in that each operation can be processed by a set of resources and has a processing time depending on the resource used. The objective is to minimize the make span, i.e., the time needed to complete all the jobs. This works aims to propose a new promising approach using multi-agent systems in order to solve the FJSP. Our model combines a local optimization approach based on Tabu Search (TS) meta-heuristic and a global optimization approach based on genetic algorithm (GA).
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