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A three-stage optimization algorithm for the stochastic parallel machine scheduling problem with adjustable production rates

机译:具有可调生产率的随机并行机器调度问题的三阶段优化算法

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摘要

We consider a parallel machine scheduling problem with random processing/setup times and adjustable production rates. The objective functions to be minimized consist of two parts; the first part is related with the due date performance (i.e., the tardiness of the jobs), while the second part is related with the setting of machine speeds. Therefore, the decision variables include both the production schedule (sequences of jobs) and the production rate of each machine. The optimization process, however, is significantly complicated by the stochastic factors in the manufacturing system. To address the difficulty, a simulation-based three-stage optimization framework is presented in this paper for high-quality robust solutions to the integrated scheduling problem. The first stage (crude optimization) is featured by the ordinal optimization theory, the second stage (finer optimization) is implemented with a metaheuristic called differential evolution, and the third stage (fine-tuning) is characterized by a perturbation-based local search. Finally, computational experiments are conducted to verify the effectiveness of the proposed approach. Sensitivity analysis and practical implications are also discussed.
机译:我们考虑具有随机处理/设置时间和可调整生产率的并行机器调度问题。要最小化的目标功能包括两部分:第一部分与截止日期性能(即作业的拖延)有关,而第二部分与机器速度的设置有关。因此,决策变量包括生产进度表(作业顺序)和每台机器的生产率。然而,由于制造系统中的随机因素,优化过程变得非常复杂。为了解决这一难题,本文提出了一种基于仿真的三阶段优化框架,以针对集成调度问题提供高质量的鲁棒解决方案。第一阶段(原始优化)的特征是有序优化理论,第二阶段(细化优化)是通过称为启发式进化的元启发式实现的,而第三阶段(微调)的特征在于基于扰动的局部搜索。最后,进行了计算实验以验证所提出方法的有效性。还讨论了灵敏度分析和实际意义。

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