Phase II monitoring of auto-correlated linear profiles using multivariate linear mixed model

R. Noorossana, Somayeh Khalili
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引用次数: 5

Abstract

In the last few decades, profile monitoring in univariate and multivariate environment has drawn a considerable attention in the area of statistical process control. In multivariate profile monitoring, it is required to relate more than one response variable to one or more explanatory variables. In this paper, the multivariate multiple linear profile monitoring problem is addressed under the assumption of existing autocorrelation among observations. Multivariate linear mixed model (MLMM) is proposed to account for the autocorrelation between profiles. Then two control charts in addition to a combined method are applied to monitor the profiles in phase II. Finally, the performance of the presented method is assessed in terms of average run length (ARL). The simulation results demonstrate that the proposed control charts have appropriate performance in signaling out-of-control conditions.
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第二阶段采用多元线性混合模型监测自相关线性剖面
在过去的几十年中,单变量和多变量环境中的剖面监测在统计过程控制领域引起了相当大的关注。在多变量概要监控中,需要将多个响应变量与一个或多个解释变量关联起来。本文在观测值之间存在自相关的假设下,研究了多变量多元线性剖面监测问题。提出了多变量线性混合模型(MLMM)来考虑剖面之间的自相关性。然后采用两种控制图和一种组合方法对第二阶段的剖面进行监测。最后,根据平均运行长度(ARL)对所提出方法的性能进行了评估。仿真结果表明,所提出的控制图在信号失控情况下具有良好的性能。
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来源期刊
International Journal of Industrial Engineering and Production Research
International Journal of Industrial Engineering and Production Research Engineering-Industrial and Manufacturing Engineering
CiteScore
1.60
自引率
0.00%
发文量
0
审稿时长
10 weeks
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