A memetic algorithm for Permutation Flow Shop Problems

H. Rahman, R. Sarker, D. Essam
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引用次数: 19

Abstract

The Permutation Flow Shop Scheduling Problem (PFSP) is a well-known combinatorial optimization problem. In this paper, a Genetic Algorithm (GA) based approach has been developed to solve PFSP, with the objective of minimizing the makespan for a set of jobs. Two new priority rules; such as Gap Filling (GF) technique and Job Shifting (JS), have been introduced to enhance the performance of the GA. The algorithm has been used to solve a set of standard benchmark problems and the results have been compared with state-of-the-art algorithms. The comparison demonstrates that the overall performance of the algorithm is quite satisfactory.
置换流水车间问题的模因算法
置换流水车间调度问题(PFSP)是一个著名的组合优化问题。本文提出了一种基于遗传算法(GA)的求解PFSP问题的方法,其目标是最小化一组作业的完工时间。两项新的优先规则;为了提高遗传算法的性能,引入了间隙填充(GF)技术和工作转移(JS)技术。该算法已用于解决一组标准基准问题,并将结果与最先进的算法进行了比较。比较表明,该算法的总体性能是令人满意的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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