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Optimization Method for Inventory and Supply Chain Management

机译:库存和供应链管理的优化方法

摘要

This thesis presents an optimization model which helps retailers to reduce product costs by taking advantage of parts commonality in manufacturing and production areas, when selling similar units with uncertainty in demands. The concept of component commonality can be often found in the assemble-to-order system, which is the foremost concept used by prominent manufacturing companies in the global market. The method developed uses genetic algorithm (GA) to solve real world optimization problems that contain integer values for parts and finished items, and uncertain information. Numerical examples are solved using generated stochastic scenarios to show the impact of uncertainty on solutions. This impact is verified using two important criteria, Expected Value of Perfect Information (EVPI) and Value of Stochastic Solution (VSS). The obtained solutions present significant monetary benefits for the manufacturer illustrating the importance of the model presented here for retailers.
机译:本文提出了一种优化模型,当销售需求不确定的类似产品时,该模型可以帮助零售商通过利用制造和生产区域中零件的通用性来降低产品成本。零件通用性的概念通常可以在按订单组装的系统中找到,这是全球市场上知名制造公司使用的最重要概念。开发的方法使用遗传算法(GA)解决现实世界中的优化问题,其中包含零件和成品的整数值以及不确定的信息。使用生成的随机场景对数值示例进行求解,以显示不确定性对解决方案的影响。使用两个重要标准,即完美信息的期望值(EVPI)和随机解的值(VSS),可以验证这种影响。所获得的解决方案为制造商带来了可观的金钱收益,从而说明了此处提出的模型对零售商的重要性。

著录项

  • 作者

    Manilachelvan Poonkuzhali;

  • 作者单位
  • 年度 2013
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
  • 中图分类

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