Multivariate exponentially weighted moving sample covariance control chart for monitoring covariance matrix

Q4 Engineering
S. A. Vaghefi, A. Amiri
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引用次数: 1

Abstract

In this paper, a control chart is proposed to detect changes in the covariance matrix of a multivariate normal process, when sample size is one. The proposed chart statistic is constructed based on the exponentially weighted form of sample covariance matrix given by individual observation over time. Distance between the values of variance and covariance components in this multivariate exponentially weighted moving sample covariance matrix and, the in-control corresponding elements of process variance-covariance matrix provides a basis for process variability monitoring. The statistical performance of the proposed method is evaluated through the use of a Monte Carlo simulation. The results show the superiority of the proposed control chart performance especially in the case of incremental changes in covariance matrix.
多变量指数加权移动样本协方差控制图监测协方差矩阵
本文提出了一种控制图来检测样本容量为1的多元正态过程的协方差矩阵的变化。所提出的图表统计量是基于个体随时间观察给出的样本协方差矩阵的指数加权形式构建的。该多变量指数加权移动样本协方差矩阵中方差值与协方差分量之间的距离,以及过程方差-协方差矩阵的控制对应元素,为过程可变性监测提供了依据。该方法的统计性能通过蒙特卡罗模拟进行了评估。结果表明,在协方差矩阵增量变化的情况下,所提出的控制图具有较好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
International Journal of Quality Engineering and Technology
International Journal of Quality Engineering and Technology Engineering-Safety, Risk, Reliability and Quality
CiteScore
0.40
自引率
0.00%
发文量
1
期刊介绍: IJQET fosters the exchange and dissemination of research publications aimed at the latest developments in all areas of quality engineering. The thrust of this international journal is to publish original full-length articles on experimental and theoretical basic research with scholarly rigour. IJQET particularly welcomes those emerging methodologies and techniques in concise and quantitative expressions of the theoretical and practical engineering and science disciplines.
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