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A multivariate control chart for simultaneously monitoring process mean and variability

机译:用于同时监控过程均值和变异性的多元控制图

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摘要

Recently, monitoring the process mean and variability simultaneously for multivariate processes by using a single control chart has drawn some attention. However, due to the complexity of multivariate distributions, existing methods in univariate processes cannot be readily extended to multivariate processes. In this paper, we propose a new single control chart which integrates the exponentially weighted moving average (EWMA) procedure with the generalized likelihood ratio (GLR) test for jointly monitoring both the multivariate process mean and variability. Due to the powerful properties of the GLR test and the EWMA procedure, the new chart provides quite robust and satisfactory performance in various cases, including detection of the decrease in variability and individual observation at the sampling point, which are very important cases in many practical applications but may not be well handled by existing approaches in the literature. The application of our proposed method is illustrated by a real data example in ambulatory monitoring.
机译:最近,通过使用单个控制图同时监视多变量过程的过程均值和变异性已引起了一些关注。但是,由于多元分布的复杂性,单变量过程中的现有方法无法轻易扩展到多元过程。在本文中,我们提出了一个新的单一控制图,该图将指数加权移动平均(EWMA)程序与广义似然比(GLR)测试相集成,以共同监视多变量过程均值和可变性。由于GLR测试和EWMA程序的强大功能,新图表在各种情况下都提供了相当强大且令人满意的性能,包括检测变异性的降低和在采样点进行单独观察,这在许多实际情况中都是非常重要的情况。应用程序,但可能无法通过文献中的现有方法很好地处理。通过一个真实的数据示例在动态监控中说明了我们提出的方法的应用。

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