Fault diagnosis in chemical processes using Fisher discriminant analysis, discriminant partial least squares, and principal component analysis

被引:531
作者
Chiang, LH [1 ]
Russell, EL [1 ]
Braatz, RD [1 ]
机构
[1] Univ Illinois, Dept Chem Engn, Large Scale Syst Res Lab, Urbana, IL 61801 USA
关键词
fault diagnosis; process monitoring; pattern classification; discriminant analysis; chemometric methods; fault detection; large scale systems; multivariate statistics; dimensionality reduction; principal component analysis; discriminant partial least squares; Fisher's discriminant analysis;
D O I
10.1016/S0169-7439(99)00061-1
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Principal component analysis (PCA) is the most commonly used dimensionality reduction technique for detecting and diagnosing faults in chemical processes. Although PCA contains certain optimality properties in terms of fault detection, and has been widely applied for fault diagnosis, it is not best suited for fault diagnosis. Discriminant partial least squares (DPLS) has been shown to improve fault diagnosis for small-scale classification problems as compared with PCA. Fisher's discriminant analysis (FDA) has advantages from a theoretical point of view. In this paper, we develop an information criterion that automatically determines the order of the dimensionality reduction for FDA and DPLS, and show that FDA and DPLS are more proficient than PCA for diagnosing faults, both theoretically and by applying these techniques to simulated data collected from the Tennessee Eastman chemical plant simulator. (C) 2000 Elsevier Science]B.V. All rights reserved.
引用
收藏
页码:243 / 252
页数:10
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