面向智能制造的动态柔性作业车间调度问题的在线优化方案

Hongcheng Wang, Yuchen Jiang, Hao Wang, Hao Luo
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引用次数: 3

摘要

柔性生产线是当前制造业的主流选择。在柔性生产线中,一台机器可以执行多种加工任务。机器故障是制造过程中常见的意外干扰。柔性生产线中的机器故障导致柔性生产线操作单元的意外停机,将对整个制造过程产生重大影响。本文采用两阶段动态调度策略,解决了柔性生产线在生产过程中出现机器故障时无法准确估计机器维修时间的问题。当任何机器发生故障或维修时,该策略用于制定柔性生产线的最佳生产计划。两阶段调度策略可以避免估计机器的维修时间,从而可以根据实际情况准确地进行动态调度。帝国主义竞争算法(ICA)最初适用于连续优化问题,而该问题属于离散优化问题。本文利用遗传算法的杂交思想对ICA进行改进,使其适用于求解动态调度的离散优化问题。实验证明了两阶段动态调度策略和改进的帝国竞争算法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An online optimization scheme of the dynamic flexible job shop scheduling problem for intelligent manufacturing
Flexible production lines are the mainstream choice in the current manufacturing industry. In a flexible line, a single machine can execute a variety of processing tasks. Machine breakdowns are common unexpected disturbances in manufacturing. Machine breakdowns in a flexible production line that result in the unexpected shutdown of the flexible production line's operation unit will have a significant influence on the overall manufacturing process. A two-stage dynamic scheduling strategy is used in this paper to solve the problem that the repair time of the machine cannot be accurately estimated when the machine fails in the production process of the flexible production lines. When any machine fails or is repaired, this strategy is used to set up the best production schedule for flexible production lines. The two-stage scheduling strategy can avoid estimating the repair time of the machine so that dynamic scheduling can be carried out accurately according to the actual situation. The imperialist competitive algorithm(ICA) is originally suitable for continuous optimization problems, while this problem falls within the category of discrete optimization. In this paper, the idea of hybridization of genetic algorithm is used to improve the ICA, so that it is suitable for discrete optimization problems to solve dynamic scheduling. Experiments demonstrate the effectiveness of the two-stage dynamic scheduling strategy and the improved imperialist competitive algorithm.
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