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Scheduling Jobs in a Two-Stage Hybrid Flow Shop with a Simulation-Based Genetic Algorithm and Standard Dispatching Rules

机译:在具有基于模拟的遗传算法和标准调度规则中的两级混合流程商店中的职位。和标准调度规则

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The paper proposes a simulation-based hyperheuristics approach to generate schedules for a two-stage hybrid flow shop scheduling problem with sequence-dependent setup times. The scheduling problem is derived from a company that is assembling printed circuit boards. A genetic algorithm determines sequences of standard dispatching rules that are evaluated by a discrete-event simulation model minimizing a multi-criteria objective composed of makespan and total tardiness. To reduce the computation time of the algorithm a dispatching rule-based chromosome representation is used containing a sequence of dispatching rules and time intervals in which the rules are applied. Different experiment configurations and their impact on solution quality and computation time are analyzed. The optimization model generates efficient schedules for multiple real-world data sets.
机译:本文提出了一种基于模拟的高兴的方法,用于使用序列相关的设置时间来生成两级混合流量储存问题的时间表。调度问题来自于组装印刷电路板的公司。遗传算法确定通过离散事件仿真模型评估的标准调度规则的序列,最小化了由Mepespan和总迟到的多标准目标。为了减少算法的计算时间,使用基于调度规则的染色体表示,其中包含了一种调度规则和应用规则的时间间隔序列。分析了不同的实验配置及其对解决方案质量和计算时间的影响。优化模型为多个真实数据集生成有效的计划。

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