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Using Statistical Process Control to Monitor Inventory Accuracy

机译:使用统计过程控制监测库存准确性

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Inventory accuracy is critical for almost all industrial environments such as distribution, warehousing, and retail. It is quite common for companies with exceptional inventory accuracy to use a technique called cycle counting. For many organizations, the time and resources to complete cycle counting are limited or not available. In this work, we promote statistical process control (SPC) to monitor inventory accuracy. Specifically, we model the complex underlying environments with mixture distributions to demonstrate sampling from a mixed but stationary process. For our particular application, we concern ourselves with data that result from inventory adjustments at the stock keeping unit (SKU) level when a given SKU is found to be inaccurate. We provide estimates of both the Type I and Type II errors when a classic C chart is used. In these estimations, we use both analytical as well as simulation results, and the findings demonstrate the environments that might be conducive for SPC approach.
机译:库存准确性对于几乎所有工业环境至关重要,如分销,仓储和零售。对于使用具有循环计数的技术的卓越库存准确性的公司非常常见。对于许多组织,完成周期计数的时间和资源是有限的或不可用的。在这项工作中,我们促进统计过程控制(SPC)监控库存准确性。具体而言,我们用混合分布模拟复杂的底层环境,以证明来自混合但静止过程的抽样。对于我们的特定应用程序,我们关注自己的数据,这些数据是由于发现给定的SKU时股票保持单元(SKU)级别的库存调整而导致的数据。当使用经典C图表时,我们提供I类型和II型错误的估计。在这些估计中,我们使用分析以及仿真结果,并且调查结果证明了可能有利于SPC方法的环境。

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