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Enhanced adaptive multivariate EWMA and CUSUM charts for process mean

机译:增强的自适应多元eWMA和CuSum图表的过程意味着

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The multivariate charts are mostly used to simultaneously monitor several quality characteristics in manufacturing processes. In this study, we enhance the sensitivities of the recently proposed adaptive multivariate EWMA (AME) and weighted adaptive multivariate CUSUM (WAMC) charts with an auxiliary-information-based (AIB) estimator, namely the AIB-AME and AIB-WAMC charts, for monitoring different kinds of shifts in the mean of a multivariate normally distributed process. In addition, the variable sampling interval (VSI) feature is also incorporated into the proposed charts. The run length properties of these control charts are computed using Monte Carlo simulations. It is found that the AIB-AME and AIB-WAMC charts are uniformly and substantially more sensitive than the AME and WAMC charts, respectively. The same trend is observed when these control charts have the VSI feature incorporated into them. Real datasets are used to demonstrate the implementation of the proposed charts.
机译:多变量图主要用于同时监测制造过程中的几种质量特征。 在这项研究中,我们通过基于辅助信息(AIB)估计器,即AIB-AME和AIB-WAMC图表,增强最近提出的自适应多元eWMA(AME)和加权自适应多元型CUSUM(WAMC)图表的敏感性,即AIB-AME和AIB-WAMC图表, 用于监测多变量正常分布过程的不同类型的变化。 另外,变量采样间隔(VSI)特征也结合到所提出的图表中。 使用Monte Carlo仿真计算这些控制图表的运行长度属性。 发现AIB-AME和AIB-WAMC图表分别比AME和WAMC图表均匀且基本上更敏感。 当这些控制图表具有包含在它们中的VSI功能时,观察到相同的趋势。 真实数据集用于演示所提出的图表的实现。

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