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首页> 外文期刊>International Journal of Industrial Engineering >A HYBRIDIZED GENETIC ALGORITHM TO SOLVE PARALLEL MACHINE SCHEDULING PROBLEMS WITH SEQUENCE DEPENDENT SETUPS
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A HYBRIDIZED GENETIC ALGORITHM TO SOLVE PARALLEL MACHINE SCHEDULING PROBLEMS WITH SEQUENCE DEPENDENT SETUPS

机译:求解序列依赖设置的并行机器调度问题的混合遗传算法

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摘要

Reducing setups in a single machine scheduling problem with sequence dependent setups is an NP-hard problem for most performance measures. Adding factors such as release times, process times, due dates, weights, and parallel machines further complicates the problem. Therefore, heuristics are often used to solve parallel machine problems. Genetic. Algorithms (GA's) are widely used for scheduling problems. In this paper, test problems are characterized by the following factors, 1) range of weights, 2) range of due dates, 3) percentage of jobs ready at the beginning, and 4) ratio of average processing times to average setup times. A GA is used to assign jobs to machines and then a dispatching rule is used to schedule the individual machines. This approach is compared with commonly used strategies and shows better results in most test cases. Three performance measures of scheduling, makespan, total weighted completion time, and total weighted tardiness, are studied.
机译:对于大多数性能指标而言,减少具有序列相关设置的单机调度问题中的设置是NP难题。添加诸如发布时间,处理时间,到期日,重量和并行机之类的因素会使问题进一步复杂化。因此,启发式方法通常用于解决并行机器问题。遗传的。算法(GA)被广泛用于调度问题。在本文中,测试问题的特征在于以下因素:1)权重范围,2)到期日范围,3)开始准备就绪的作业百分比以及4)平均处理时间与平均设置时间的比率。 GA用于将作业分配给计算机,然后使用调度规则来调度各个计算机。将该方法与常用策略进行了比较,并在大多数测试案例中显示了更好的结果。研究了日程安排的三个性能指标:制造期,总加权完成时间和总加权拖延时间。

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