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A demand classification scheme for spare part inventory model subject to stochastic demand and lead time

机译:随机需求和提前期的备件库存模型需求分类方案

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摘要

In this study, we aim to develop a demand classification methodology for classifying and controlling inventory spare parts subject to stochastic demand and lead time. Using real data, the developed models were tested and their performances were evaluated and compared. The results show that the Laplace model provided superior performance in terms of service level, fill rate (FR) and inventory cost. Compared with the current system based on normal distribution, the proposed Laplace model yielded significant savings and good results in terms of the service level and the FR. The Laplace and Gamma optimisation models resulted in savings of 82 and 81%, respectively.
机译:在这项研究中,我们旨在开发一种需求分类方法,以根据随机需求和提前期对库存备件进行分类和控制。使用实际数据,测试了开发的模型,并评估和比较了它们的性能。结果表明,Laplace模型在服务水平,填充率(FR)和库存成本方面提供了卓越的性能。与基于正态分布的当前系统相比,所提出的Laplace模型在服务水平和FR方面节省了大量资金,并取得了良好的效果。 Laplace和Gamma优化模型分别节省了82%和81%。

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