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Process monitoring and diagnosis by multiblock PLS methods

AIChE Journal · 1994 · Vol. 40(5) · pp. 826–838
John F. MacGregorChristiane JaeckleCostas KiparissidesM. Koutoudi

Abstract

Abstract Schemes for monitoring the operating performance of large continuous processes using multivariate statistical projection methods such as principal component analysis (PCA) and projection to latent structures (PLS) are extended to situations where the processes can be naturally blocked into subsections. The multiblock projection methods allow one to establish monitoring charts for the individual process subsections as well as for the entire process. When a special event or fault occurs in a subsection of the process, these multiblock methods can generally detect the event earlier and reveal the subsection within which the event has occurred. More detailed diagnostic methods based on interrogating the underlying PCA/PLS models are also developed. These methods show those process variables which are the main contributors to any deviations that have occurred, thereby allowing one to diagnose the cause of the event more easily. These ideas are demonstrated using detailed simulation studies on a multisection tubular reactor for the production of low‐density polyethylene.

Fault Detection and Control SystemsSpectroscopy and Chemometric AnalysesMineral Processing and GrindingProcess (computing)Projection (relational algebra)Principal component analysisEvent (particle physics)Computer scienceFault detection and isolationMultivariate statisticsData miningArtificial intelligencePattern recognition (psychology)
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References
A User's Guide to Principal Components
Technometrics · 1993 · 3,347 citations
Partial least-squares regression: a tutorial
Analytica Chimica Acta · 1986 · 6,874 citations
Introduction to Multivariate Statistical Analysis.
American Mathematical Monthly · 1959 · 3,923 citations
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