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A comparative study of lot sizing problem in MTO supply chain based on simulation optimization approach

机译:基于仿真优化方法的MTO供应链批量问题比较研究

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This paper deals with the lot sizing problem in Make To Order (MTO) supply chain solved by simulation optimization (SO) approach. A comprehensive case study which presented in detail involves a multi-stage, multi-product, multi-location, multi-resource with setup, capacity constraints and stochastic demand. The case study objective is to determine a fixed optimal lot size for each manufactured product type that will ensure Order Mean Flow Time (OMFT) target value for each finished product type. For a comparative purpose, three SO methods are used: (1) A metamodel method based on Response Surface Methodology (RSM), (2) A metamodel method based on Factorial Design, and (3) Global Search method based simultaneously on Tabu Search, Neural Networks, and Scatter Search. Methods (1) and (2) have been treated in the literature with a manual based approach, while the method (3) using the OptQuest Software will be more addressed in this paper,. The results of the comparative study show that the first method which is based on RSM is very effective while the third one is very practical and gives a good satisfactory solution.
机译:本文通过仿真优化(SO)方法解决按订单生产(MTO)供应链中的批量问题。详细介绍的综合案例研究涉及具有设置,容量限制和随机需求的多阶段,多产品,多地点,多资源。案例研究的目的是为每种制成品确定固定的最佳批量,以确保每种制成品的定单平均流动时间(OMFT)目标值。为了进行比较,使用了三种SO方法:(1)基于响应表面方法(RSM)的元模型方法,(2)基于因子设计的元模型方法,以及(3)同时基于禁忌搜索的全局搜索方法,神经网络和散点搜索。方法(1)和(2)在文献中已使用基于手动的方法进行了处理,而使用OptQuest软件的方法(3)将在本文中进行更多介绍。比较研究结果表明,第一种基于RSM的方法非常有效,而第三种非常实用,并且给出了令人满意的解决方案。

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