Data-Driven Fault Detection for Industrial Processes

Canonical Correlation Analysis and Projection Based Methods

(Autor)

Buch | Softcover
XIX, 112 Seiten
2017 | 1st ed. 2017
Springer Fachmedien Wiesbaden GmbH (Verlag)
978-3-658-16755-4 (ISBN)

Lese- und Medienproben

Data-Driven Fault Detection for Industrial Processes - Zhiwen Chen
80,24 inkl. MwSt
Zhiwen Chen aims to develop advanced fault detection (FD) methods for the monitoring of industrial processes. With the ever increasing demands on reliability and safety in industrial processes, fault detection has become an important issue. Although the model-based fault detection theory has been well studied in the past decades, its applications are limited to large-scale industrial processes because it is difficult to build accurate models. Furthermore, motivated by the limitations of existing data-driven FD methods, novel canonical correlation analysis (CCA) and projection-based methods are proposed from the perspectives of process input and output data, less engineering effort and wide application scope. For performance evaluation of FD methods, a new index is also developed.

Zhiwen Chen’s research interests include multivariate statistical process monitoring, model-based and data-driven fault diagnosis as well as their application to industrial processes. He is currently working at the School of Information Science and Engineering at Central South University, China.

A New Index for Performance Evaluation of FD Methods.- CCA-based FD Method for the Monitoring of Stationary Processes.- Projection-based FD Method for the Monitoring of Dynamic Processes.- Benchmark Study and Real-Time Implementation.

 

Erscheinungsdatum
Zusatzinfo XIX, 112 p. 39 illus.
Verlagsort Wiesbaden
Sprache englisch
Maße 148 x 210 mm
Themenwelt Mathematik / Informatik Mathematik Angewandte Mathematik
Technik Elektrotechnik / Energietechnik
Schlagworte Appl.Mathematics/Computational Methods of Engineer • automatic control engineering • Control • Data-Driven method • Deterministic disturbances • Engineering • Engineering: general • Kernel representation • Maths for engineers • Multivariate statistical process monitoring • Performance Evaluation • Subspace Method
ISBN-10 3-658-16755-6 / 3658167556
ISBN-13 978-3-658-16755-4 / 9783658167554
Zustand Neuware
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