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Monitoring Multi-Attribute Processes Based on NORTA Inverse Transformed Vectors
Authors:Seyed Taghi Akhavan Niaki  Babak Abbasi
Institution:1. Department of Industrial Engineering , Sharif University of Technology , Tehran, Iran Niaki@Sharif.edu;3. Department of Industrial Engineering , Sharif University of Technology , Tehran, Iran
Abstract:Although multivariate statistical process control has been receiving a well-deserved attention in the literature, little work has been done to deal with multi-attribute processes. While by the NORTA algorithm one can generate an arbitrary multi-dimensional random vector by transforming a multi-dimensional standard normal vector, in this article, using inverse transformation method, we initially transform a multi-attribute random vector so that the marginal probability distributions associated with the transformed random variables are approximately normal. Then, we estimate the covariance matrix of the transformed vector via simulation. Finally, we apply the well-known T 2 control chart to the transformed vector. We use some simulation experiments to illustrate the proposed method and to compare its performance with that of the deleted-Y method. The results show that the proposed method works better than the deleted-Y method in terms of the out-of-control average run length criterion.
Keywords:Multivariate statistics  Multi-attribute control chart  Normal transformation  NORTA method  Quality control
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