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MEWMA charts when parameters are estimated with applications in gene expression and bimetal thermostat monitoring

机译:当基因表达和双金属恒温器监测中估计参数时的MEWMA图表

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Multivariate exponentially weighted moving average (MEWMA) control charts for individual monitoring requirea prioriknowledge of the in-control parameters. In practice, this assumption is not always tenable, and estimated parameters are generally obtained from an in-control reference sample ofmpreliminary observations (Phase I sample). Here, we compared the Phase II performance of MEWMA control charts using different methods for estimating the covariance matrix when the in-control covariance structure is unknown, and only a small Phase I sampleis available. The performance of the MEWMA control charts varied among the methods. For simulated data with smallm, the performance of MEWMA control charts using a shrinkage estimate of the covariance matrix was superior (in terms of run-length properties) to the alternative methods considered in this study. The improved performance of MEWMA control charts using the shrinkage estimate was also demonstratedviaillustrative case studies of bimetal thermostat and gene expression applications; changes were detected earlier by the shrinkage-based MEWMA method
机译:多变量指数加权移动平均(MEWMA)控制图表,用于个人监控需求在控制方案中优先施加。在实践中,该假设并不总是可屈服的,并且通常从映射的vimary观察结果(I相样品)的对照参考样本获得估计参数。在这里,我们使用不同方法对MEWMA控制图的阶段II性能进行了使用不同方法估计协方差矩阵,当控制协方差结构未知时,只有一个小阶段I Squestis可用。 MEWMA控制图的性能在方法中变化。对于具有Smalm的模拟数据,使用协方差矩阵的收缩估计的MEWMA控制图的性能优于本研究中考虑的替代方法的优越(在运行长度属性方面)。使用收缩估计的MEWMA控制图的改善性能也表明了对二聚体恒温器和基因表达应用的案例研究;通过基于收缩的MEWMA方法更早检测到变化

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