Multi-layer Contribution Propagation Analysis for Fault Diagnosis

被引:0
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作者
Ruo-Mu Tan
Yi Cao
机构
[1] Cranfield University,School of Water, Energy and Environment
[2] Zhejiang University,College of Chemical and Biological Engineering
关键词
Process monitoring; fault detection and diagnosis; contribution plots; feature extraction; multivariate statistics;
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学科分类号
摘要
The recent development of feature extraction algorithms with multiple layers in machine learning and pattern recognition has inspired many applications in multivariate statistical process monitoring. In this work, two existing multilayer linear approaches in fault detection are reviewed and a new one with extra layer is proposed in analogy. To provide a general framework for fault diagnosis in succession, this work also proposes the contribution propagation analysis which extends the original definition of contribution of variables in multivariate statistical process monitoring. In fault diagnosis stage, the proposed contribution propagation analysis for multilayer linear feature extraction algorithms is compared with the fault diagnosis results of original contribution plots associated with single layer feature extraction approach. Plots of variable contributions obtained by the aforementioned approaches on the data sets collected from a simulated benchmark case study (Tennessee Eastman process) as well as an industrial scale multiphase flow facility are presented as a demonstration of the usage and performance of the contribution propagation analysis on multilayer linear algorithms.
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页码:40 / 51
页数:11
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