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   Phase II Monitoring of Auto-Correlated Linear Profiles Using Multivariate Linear Mixed Model  
   
نویسنده khalili somayeh ,noorossana rassoul
منبع international journal of industrial engineering and production research - 2021 - دوره : 32 - شماره : 1 - صفحه:1 -11
چکیده    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.
کلیدواژه Average run length (ARL); Multivariate exponential weighted moving average covariance chart (MEWMC); Multivariate linear mixed model (MLMM); Within profile correlation; Multivariate multiple linear regression profiles; Phase II
آدرس islamic azad university, south-tehran branch, industrial engineering department, Iran, iran university of science and technology, industrial engineering department, Iran
پست الکترونیکی rassoul@iust.ac.ir
 
     
   
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