基于差分进化算法的贪婪随机自适应搜索算法求解无等待流水车间调度问题

H. Akrout, B. Jarboui, Abdelwaheb Rebaï, P. Siarry
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引用次数: 9

摘要

生产车间的调度包括根据问题的约束为现有机器分配许多不同的任务,以优化目标函数。本文主要研究具有最大完工时间目标的无等待流车间调度问题。提出了一种将贪婪随机自适应搜索算法(GRASP)与差分进化算法(DEA)相结合的新型混合算法NEWGRASP-DE。此外,我们使用迭代局部搜索(ILS)作为GRASP方法的改进阶段。我们的算法在文献中提出的实例上进行了测试。我们将我们的结果与其他作者的结果进行了比较。实验结果表明了算法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
New Greedy Randomized Adaptive Search Procedure based on differential evolution algorithm for solving no-wait flowshop scheduling problem
Scheduling in a production workshop consists of assigning a number of different tasks to the existing machines with respect to the constraints of the problem in order to optimise the objective function. In this paper, we focus on the NoWait Flow Shop Scheduling Problem (NWFSSP) with the makespan objective. We present a new hybrid algorithm NEWGRASP-DE that combines Greedy Randomised Adaptive Search Procedure (GRASP) with Differential Evolution Algorithm (DEA). Furthermore, we used an Iterative Local Search (ILS) as an improvement phase in the GRASP method. Our algorithm is tested on instances that have been proposed in the literature. We compared our results with those of different authors. The experimental results show the effectiveness of our algorithm.
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