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Bivariate Dispersion Control Charts for Monitoring Non-Normal Processes

机译:用于监控非正常过程的双变量色散控制图

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摘要

Multivariate control charts are well known to be more sensitive to the occurrence of variation in processes with two or more correlated quality variables than univariate charts. The use of separate univariate control charts to monitor multivariate process can be misleading as it ignores the correlation between the quality characteristics. The application of multivariate control charts allows for the simultaneous monitoring of the quality characteristics by forming a single chart. The charts operate on the assumption that process observations are normally distributed, but in practice this is not always the case. In this study, we examine and present multivariate dispersion control charts for detecting shifts in the covariance matrix of normal and non-normal bivariate processes. These control charts, referred to as SMAX, QMAX, MDMAX and MADMAX, rely on dispersion estimates, such as the sample standard deviation (S), interquartile range (Q), average absolute deviation from median (MD) and median absolute deviation (MAD), respectively. We compare the performances of these charts to the existing multivariate generalized variance |S| and RMAX charts for bivariate processes using normal and non-normal parent distributions. The average run length (ARL) measure is used for the evaluation and comparison of the charts. A real life and simulated datasets are used to demonstrate the application of the charts. Copyright (c) 2016 John Wiley & Sons, Ltd.
机译:众所周知,与单变量图表相比,多变量控制图对具有两个或更多相关质量变量的过程中变化的发生更为敏感。使用单独的单变量控制图来监视多元过程可能会产生误导,因为它忽略了质量特征之间的相关性。多元控制图的应用允许通过形成单个图来同时监视质量特性。这些图表在假设过程观察值呈正态分布的前提下运行,但实际上并非总是如此。在这项研究中,我们检查并提出了多元离散控制图,用于检测正常和非正常双变量过程的协方差矩阵中的偏移。这些控制图分别称为SMAX,QMAX,MDMAX和MADMAX,它们依赖于色散估计,例如样本标准偏差(S),四分位数范围(Q),中位数的平均绝对偏差(MD)和中位数的绝对偏差(MAD) ), 分别。我们将这些图表的性能与现有的多元广义方差| S |进行比较。和RMAX图,用于使用正态和非正态父分布的双变量过程。平均游程长度(ARL)度量用于图表的评估和比较。真实生活和模拟数据集用于演示图表的应用。版权所有(c)2016 John Wiley&Sons,Ltd.

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