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Dynamic dispatching for interbay automated material handling with lot targeting using improved parallel multiple-objective genetic algorithm

机译:使用改进的并行多目标遗传算法进行批次瞄准的Interbay自动化材料的动态调度

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摘要

With the growth of wafer size from 200 mm to 300 mm and then to 450 mm in recent years, automatic material handling system (AMHS) has played an indispensable role in semiconductor wafer fabrication systems, and improving the overall efficiency of interbay AMHS has therefore received considerable attention. This study investigates the integrated scheduling problem in an interbay AMHS that combines vehicle scheduling with lot targeting. However, the large-scale, dynamic, and stochastic production environment significantly substantiates the complexity of the scheduling problem. To meet the demands of adaptive adjusting, efficient scheduling, and multiple-objective optimization, this study develops an improved parallel multiple-objective genetic algorithm with full use of parallel strategy, multiobjective evolutionary process, and local search strategy. Simulation experiments have been conducted and the numerical results illustrate the superiority of the algorithm in terms of comprehensive performance of multiple sub-objectives. (C) 2021 Elsevier Ltd. All rights reserved.
机译:随着近年来200毫米至300毫米的晶片尺寸的增长,自动材料处理系统(AMHS)在半导体晶片制造系统中发挥了不可或缺的作用,因此因此收到了Interbay AMH的整体效率相当大的关注。本研究调查了与批次瞄准的内部AMH中的综合调度问题。然而,大规模,动态和随机的生产环境显着证实了调度问题的复杂性。为了满足自适应调整,高效调度和多目标优化的要求,该研究开发了一种改进的并行多目标遗传算法,充分利用并行策略,多目标进化过程和本地搜索策略。已经进行了仿真实验,数值结果在多个子目标的综合性能方面说明了算法的优越性。 (c)2021 elestvier有限公司保留所有权利。

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