A Robust Optimization Approach for Production Planning Under Exogenous Planned Lead Times

Erinç Albey, Ihsan Yanikoglu, R. Uzsoy
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Abstract

Many production planning models applied in semiconductor manufacturing represent lead times as fixed exogenous parameters. However, in reality, lead times must be treated as realizations of released lots’ cycle times, which are in fact random variables. In this paper, we present a distributionally robust release planning model that allows planned lead time probability estimates to vary over a specified ambiguity set. We evaluate the performance of non-robust and robust approaches using a simulation model of a scaled-down wafer fabrication facility. We examine the effect of increasing uncertainty in the estimated lead time parameters on the objective function value and compare the worst-case, average optimality, and feasibility of the two approaches. The numerical results show that the average objective function value of the robust solutions are better than that of the nominal solution by a margin of almost 20% in the scenario with the highest uncertainty level.
外生计划交货期下生产计划的鲁棒优化方法
半导体制造中应用的许多生产计划模型将交货时间表示为固定的外生参数。然而,在现实中,交货期必须被视为已发布批次周期时间的实现,而周期时间实际上是随机变量。在本文中,我们提出了一个分布式健壮的发布计划模型,该模型允许计划的提前期概率估计在指定的模糊集上变化。我们使用一个按比例缩小的晶圆制造设备的仿真模型来评估非鲁棒和鲁棒方法的性能。我们研究了预估提前期参数的不确定性增加对目标函数值的影响,并比较了两种方法的最坏情况、平均最优性和可行性。数值结果表明,在不确定程度最高的情况下,鲁棒解的平均目标函数值比名义解的平均目标函数值好近20%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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