以作业完成时间总和最小为准则的置换流水车间问题的并行禁忌搜索算法

W. Bożejko, J. Pempera
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引用次数: 4

摘要

本文研究了一种用于制造系统的智能算法。针对流水车间调度问题,提出了一种快速并行禁忌搜索算法,使作业完成时间最小化。所谓的多步法,包括同时执行几个独立的步法,这允许一个人非常快速地引导搜索过程到解决方案空间的有希望的区域,在那里可以找到好的解决方案。此外,提出了一种自适应的动态禁忌列表和变邻域,以避免陷入局部最优。本文提出的算法在双核个人计算机上进行了实验验证,结果表明,该算法在寻找质量解方面比其他主要方法更有效,而且求解时间更短。所提出的思想可以扩展到涵盖其他难题的搜索方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Parallel tabu search algorithm for the permutation flow shop problem with criterion of minimizing sum of job completion times
This paper deals with an intelligent algorithm dedicated for the use in manufacturing systems. Particularly, it develops the fast parallel tabu search algorithm to minimize sum of job completion times in the flow shop scheduling problem. So called multimoves are used, that consist in performing several independent moves simultaneously, which allow one to guide very quickly the search process to promising areas of the solutions space, where good solutions can be found. Besides, an adaptable dynamic tabu list and varying neighborhood are proposed to avoid being trapped at a local optimum. The proposed algorithms are experimentally evaluated on a personal computer with duo-core processor and found to be relatively more effective in finding solutions of quality better than other leading approaches, and also it makes in a much shorter time. The presented ideas can be extended to cover search methods for other hard problems.
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