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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >ACO-based multi-objective scheduling of parallel batch processing machines with advanced process control constraints
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ACO-based multi-objective scheduling of parallel batch processing machines with advanced process control constraints

机译:具有高级过程控制约束的基于ACO的并行批处理机器的多目标调度

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摘要

This research was motivated by a scheduling problem in the dry strip operations of a semiconductor wafer fabrication facility. The machines were modeled as parallel batch processing machines with incompatible job families and dynamic job arrivals, and constraints on the sequence-dependent setup time and the qual-run requirements of advanced process control. The optimization had multiple objectives, the total weighted tardiness (TWT) and makespan, to consider simultaneously. Since the problem is NP-hard, we used an Ant Colony Optimization (ACO) algorithm to achieve a satisfactory solution in a reasonable computation time. A variety of simulation experiments were run to choose ACO parameter values and to demonstrate the performance of the proposed method. The simulation results showed that the proposed ACO algorithm is superior to the common Apparent Tardiness Cost-Batched Apparent Tardiness Cost rule for minimizing the TWT and makespan. The arrival time distribution and the number of jobs strongly affected the ACO algorithm's performance.
机译:这项研究是由半导体晶圆制造厂的干法剥离操作中的调度问题引起的。这些机器被建模为并行的批处理机器,具有不兼容的工作族和动态的工作到达时间,并限制了与序列有关的设置时间和高级过程控制的质量运行要求。该优化有多个目标,总加权拖迟度(TWT)和生产期需要同时考虑。由于问题是NP难题,因此我们使用了蚁群优化(ACO)算法在合理的计算时间内实现了令人满意的解决方案。进行了各种模拟实验以选择ACO参数值,并证明了该方法的性能。仿真结果表明,所提出的ACO算法在最小化TWT和制造跨度方面优于常用的视在拖延成本分批视在拖延成本规则。到达时间分布和作业数量极大地影响了ACO算法的性能。

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