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A simulation optimization approach-based genetic algorithm for lot sizing problem in a MTO sector

机译:MTO部门中基于仿真优化方法的批量算法

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In this paper, a combined simulation and Genetic Algorithm (GA) optimization model is developed to solve the Lot Sizing Problem (LSP) in a Make to Order (MTO) supply chain. The simulation model is performed using ARENA software. GA model is implemented using Visual Basic for Application (VBA) language, because it ensures exchanges between ARENA software and Ms Excel. The GA and simulation models operate in parallel over time with interactions. The case study's objective is to determine a fixed optimal lot size for each manufactured product type that will ensure order mean flow time target for each finished product. The comparative results with OptQuest software, which is used a global search method, to illustrate the efficiency and effectiveness of the proposed approach.
机译:为了解决按订单生产(MTO)供应链中的批量问题(LSP),本文开发了一种组合的仿真和遗传算法(GA)优化模型。仿真模型是使用ARENA软件执行的。 GA模型是使用Visual Basic for Application(VBA)语言实现的,因为它可以确保ARENA软件与Excel女士之间的交换。 GA和仿真模型会随着时间的流逝与交互并行运行。案例研究的目的是为每种制成品类型确定一个固定的最佳批量,以确保每个成品的定单平均流动时间目标。与OptQuest软件的比较结果,该软件使用了全局搜索方法,以说明所提出方法的效率和有效性。

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