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A Stochastic, Multi-Commodity Multi-Period Inventory-Location Problem: Modeling and Solving an Industrial Application

机译:随机,多商品,多期间库存定位问题:建模和解决工业应用问题

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This paper addresses the real-world supply chain network design problem with a strategic multi-commodity and multi-period inventory-location problem with stochastic demands. The proposed methodology involves a complex non-linear, non-convex, mixed integer programming model, which allows for the optimization of warehouse location, demand zone's assignment, and manufacturing settings while minimizing the fixed costs of a distribution center (DC), along with the transportation and inventory costs in a multi-commodity, multi-period scenario. In addition, a genetic algorithm is implemented to obtain near-optimal solutions at competitive times. We applied the model to a real-world industrial case of a Colombian rolled steel manufacturing company, where a new, optimized supply chain distribution network is required to serve customers at a national level. The proposed approach provides a practical solution to optimize their distribution network, achieving significant cost reductions for the company.
机译:本文针对具有随机需求的战略性多商品,多周期库存定位问题,解决了现实世界中的供应链网络设计问题。拟议的方法涉及复杂的非线性,非凸,混合整数规划模型,该模型可优化仓库位置,需求区域的分配和制造设置,同时将配送中心(DC)的固定成本降至最低多商品,多期间方案中的运输和库存成本。另外,实施遗传算法以在竞争时期获得接近最优的解决方案。我们将模型应用于哥伦比亚轧钢制造公司的实际工业案例中,该案例需要一个新的,优化的供应链分销网络来为全国客户提供服务。所提出的方法为优化分销网络提供了切实可行的解决方案,从而为公司大大降低了成本。

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