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Principal Alarms In Multivariate Statistical Process Control Using Independent Component Analysis

机译:使用独立分量分析的多元统计过程控制中的主要警报

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摘要

This article proposes a methodology that helps to predict the main mean shifts, denoted as principal alarms, in a non-normal multivariate process using the available in-control data. The analysis is based on the transformation of the observed correlated variables into independent factors using independent component analysis. These independent components allow us to simulate shifts preserving the covariance structure. The graphical representations of those simulated shifts are helpful in improving the design and control of the process. Two real manufacturing processes are presented showing the advantage of the proposed methodology.
机译:本文提出了一种方法,该方法可使用可用的控制内数据,在非正态多变量过程中帮助预测表示为主要警报的主要均值漂移。该分析基于使用独立分量分析将观察到的相关变量转换为独立因素的基础。这些独立的组件使我们能够模拟保留协方差结构的平移。这些模拟班次的图形表示形式有助于改善流程的设计和控制。提出了两个实际的制造过程,显示了所提出方法的优势。

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