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Allocating spares to maximize the window fill rate in a periodic review inventory system

机译:分配备件以最大化窗口填充率在定期审核库存系统中

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We study the spares allocation problem in a multiple-item, multiple-location inventory system with periodic review. The system allocates spares with the objective of maximizing the window fill rate, which is the probability that a random customer is served within a given time window. The advantage of the window fill rate as a service performance measure is that it takes into account that customers may tolerate a certain wait before they are served. We develop the window fill rate formula and show that, depending on the tolerable wait, it is either a constant, concave or convex-concave with the number of spares. We use this result to develop an efficient algorithm to find the optimal spares allocation for a given budget or for a given target window fill rate. We show that when the tolerable wait or the budget are small, spares will be clustered in a subgroup of the locations (or item-types), while the other locations (or item-types) do not receive any spares. In addition, we numerically illustrate the spares allocation problem using two different synthetic large-scale examples. In particular, we use these examples to demonstrate the cost (in terms of additional spares) of a periodic review compared to a continuous review. The numerical illustration also highlights the complexity of the window fill rate and the savings gained by using it as an optimality criterion.
机译:我们在多项审查中研究了多项目的多项目的备件分配问题。系统分配了窗口的目标,其目的是最大化窗口填充率,这是随机客户在给定时间窗口内提供的概率。作为服务性能措施的窗口填充率的优势在于它考虑到客户可以在服务之前容忍某种等待。我们开发窗口填充率公式并显示,根据可容忍的等待,它是一个常量,凹或凸凹,具有备件的数量。我们使用此结果开发一种有效的算法,以找到给定预算的最佳备件分配或给定的目标窗口填充率。我们表明,当可容忍的等待或预算很小时,将在位置(或项目类型)的子组中聚集备件,而其他位置(或项目类型)不会收到任何备件。此外,我们使用两种不同的合成大规模示例进行了数值示出了备件分配问题。特别是,与连续审查相比,我们使用这些例子来证明定期审查的成本(在额外的备件方面)。数值图还突出了窗口填充率的复杂性,并通过将其作为最优性标准来获得的节省。

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