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A genetic algorithm for vendor managed inventory control system of multi-product multi-constraint economic order quantity model

机译:多产品多约束经济订单数量模型的卖方管理库存控制系统遗传算法

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摘要

In this research, an economic order quantity (EOQ) model is first developed for a two-level supply chain system consisting of several products, one supplier and one-retailer, in which shortages are backordered, the supplier's warehouse has limited capacity and there is an upper bound on the number of orders. In this system, the supplier utilizes the retailer's information in decision making on the replenishments and supplies orders to the retailer according to the well known (R,Q) policy. Since the model of the problem is of a non-linear integer-programming type, a genetic algorithm is then proposed to find the order quantities and the maximum backorder levels such that the total inventory cost of the supply chain is minimized. At the end, a numerical example is given to demonstrate the applicability of the proposed methodology and to evaluate and compare its performances to the ones of a penalty policy approach that is taken to evaluate the fitness function of the genetic algorithm.
机译:在这项研究中,首先针对包含多个产品,一个供应商和一个零售商的两级供应链系统开发了一种经济订单数量(EOQ)模型,其中缺货被补货,供应商的仓库容量有限,并且存在订单数量的上限。在该系统中,供应商利用零售商的信息来进行补货决策,并根据众所周知的(R,Q)策略向零售商提供订单。由于问题的模型是非线性整数编程类型,因此提出了一种遗传算法来查找订单数量和最大延期交货水平,从而使供应链的总库存成本最小化。最后,给出了一个数值算例,以证明所提出方法的适用性,并将其性能与惩罚策略方法的性能进行评估和比较,该惩罚策略方法用于评估遗传算法的适应度函数。

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