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Joint EWMA charts for multivariate process control: Markov chain and optimal design

机译:EWMA联合图表用于多过程控制:马尔可夫链和最优设计

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This paper deals with the optimal design of a set of univariate exponentially weighted moving average (EWMA) quality control charts to monitor several correlated variables. The aim is to find the values for the parameters of the set of charts that minimise the average run length (ARL) for a given process shift, according to three different problem formulations, in terms of the symmetry of the directions of shift that may be expected in the particular process. The first step to achieve this objective has been the development of a multidimensional Markov chain model to compute the ARLs of the set of EWMA control charts. A genetic algorithm has been employed for the optimisation. Finally, a (non-exhaustive) performance comparison is presented between the joint EWMA charts and the equivalent multivariate EWMA (MEWMA) control chart. No scheme uniformly outperforms the other one. In some cases, the univariate charts largely outperform the MEWMA chart for the shift they are optimised but perform much worse for other shifts. Therefore, the tools described in this paper help the user to make an informed decision considering the shifts that may be expected in each particular case.
机译:本文研究了一组单变量指数加权移动平均值(EWMA)质量控制图的优化设计,以监控几个相关变量。目的是根据三种不同的问题公式,根据可能的移动方向对称性,找到一组图表参数的值,这些值可根据给定的流程移动最小化给定过程移动的平均运行长度(ARL)。在特定过程中预期。实现此目标的第一步是开发多维马尔可夫链模型,以计算EWMA控制图集的ARL。遗传算法已被用于优化。最后,在联合EWMA图和等效多元EWMA(MEWMA)控制图之间进行了(非穷举)性能比较。没有任何一种方案能够统一地胜过其他方案。在某些情况下,单变量图表在优化的班次上大大胜过MEWMA图表,但在其他班次上的表现要差得多。因此,本文所述的工具可帮助用户考虑每种特定情况下可能发生的变化做出明智的决定。

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