Non-parametric confidence bounds for process performance monitoring charts

被引:338
作者
Martin, EB
Morris, AJ
机构
[1] UNIV NEWCASTLE UPON TYNE,DEPT ENGN MATH,NEWCASTLE TYNE NE1 7RU,TYNE & WEAR,ENGLAND
[2] UNIV NEWCASTLE UPON TYNE,DEPT CHEM & PROC ENGN,NEWCASTLE TYNE NE1 7RU,TYNE & WEAR,ENGLAND
关键词
multivariate statistical process control; fault detection and diagnosis; confidence bounds;
D O I
10.1016/0959-1524(96)00010-8
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Statistical Process Control (SPC) provides a tool for achieving and maintaining product quality. In today's climate of major data monitoring campaigns there has been an increase in interest in the multivariate statistical projection techniques of principal components analysis and projection to latent structures for process performance monitoring. Within univariate SPC, techniques for identifying when a process is moving out of control are well established. Similar guidelines are required for multivariate statistical process control (MSPC). Two approaches will be discussed - Hotelling's T-2 statistic and a new approach, the M(2) statistic. Both approaches will be illustrated by application to a high pressure low density polyethylene tubular reactor and to a batch methyl methacrylate polymerisation reactor. Copyright (C) 1996 Elsevier Science Ltd
引用
收藏
页码:349 / 358
页数:10
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