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Optimal Statistical Design of a Multivariate EWMA Chart Based on ARL and MRL
Authors:M. H. Lee  Michael B. C. Khoo
Affiliation:1. School of Mathematical Sciences, Universiti Sains Malaysia , Penang , Malaysia leemingha913@yahoo.com;3. School of Mathematical Sciences, Universiti Sains Malaysia , Penang , Malaysia
Abstract:Statistical design is applied to a multivariate exponentially weighted moving average (MEWMA) control chart. The chart parameters are control limit H and smoothing constant r. The choices of the parameters depend on the number of variables p and the size of the process mean shift δ. The MEWMA statistic is modeled as a Markov chain and the Markov chain approach is used to determine the properties of the chart. Although average run length has become a traditional measure of the performance of control schemes, some authors have suggested other measures, such as median and other percentiles of the run length distribution to explain run length properties of a control scheme. This will allow a thorough study of the performance of the control scheme. Consequently, conclusions based on these measures would provide a better and comprehensive understanding of a scheme. In this article, we present the performance of the MEWMA control chart as measured by the average run length and median run length. Graphs are given so that the chart parameters of an optimal MEWMA chart can be determined easily.
Keywords:Average run length (ARL)  Markov chain  Median run length (MRL)  Multivariate exponentially weighted moving average (MEWMA) control chart
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