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Scheduling of printed circuit board (PCB) assembly systems with heterogeneous processors using simulation-based intelligent optimization methods

机译:使用基于仿真的智能优化方法调度具有异构处理器的印刷电路板(PCB)组装系统

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摘要

The complexity of printed circuit boards (PCBs), as an important sector of the electronics manufacturing industry, has increased over the last three decades. This paper focuses on a practical application observed at a PCB assembly line of electronics manufacturing facility. It is shown that this problem is equivalent to a flowshop scheduling with multiple heterogeneous batch processors where processors can perform multiple tasks as long as the sizes of jobs in a batch do not violate the processors' capacity. The equivalent problem is mathematically formulated as a mixed integer programming model. Then, a Monte Carlo simulation is incorporated into high-level genetic algorithm-based intelligent optimization techniques to assess the performance of makespan-oriented system under uncertain processing times. At each iteration of algorithm, the output of simulator is used by optimizers to provide online feedbacks on the progress of the search and direct the search toward a promising solution zone. Furthermore, various parameters and operators of the algorithm are discussed and calibrated by means of Taguchi statistical technique. The result of extensive computational experiments shows that the solution approach gives high-quality solutions in reasonable computational time.
机译:在过去的三十年中,作为电子制造行业重要部门的印刷电路板(PCB)的复杂性有所增加。本文重点介绍在电子制造工厂的PCB装配线上观察到的实际应用。可以看出,此问题等效于使用多个异构批处理程序的Flowshop调度,其中,只要批处理中的作业大小不违反处理器的容量,处理器就可以执行多个任务。等效问题在数学上被公式化为混合整数规划模型。然后,在基于高级遗传算法的智能优化技术中采用了蒙特卡洛模拟,以评估不确定处理时间下面向制造期的系统的性能。在算法的每次迭代中,优化程序将模拟器的输出用于提供有关搜索进度的在线反馈,并将搜索引向有希望的解决方案区域。此外,利用田口统计技术对算法的各种参数和运算符进行了讨论和校准。大量计算实验的结果表明,该解决方案可以在合理的计算时间内提供高质量的解决方案。

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