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Adaptive Gaussian Mixture Model-Based Relevant Sample Selection for JITL Soft Sensor Development

delete2014-12-15
delete53
PRE
AI
M
Miao Fan
葛
葛志强 (Zhiqiang Ge) *
Z
Zhihuan Song
DOI:10.1021/ie5029864delete
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摘要

摘要

En 中文
Just-in-time learning (JITL) has recently been used for online soft sensor modeling. Unlike traditional global approaches, the JITL-based method employs a local model built from historical samples similar to a query sample so that both nonlinearities and changes in process characteristics can be handled well. A key issue in JITL is to establish a suitable similarity criterion for selecting relevant samples. Conventional JITL methods, which use distance-based similarity measures for local modeling, can be inappropriate for many industrial processes exhibiting time-varying and non-Gaussian behaviors. In this article, a GMM-based similarity measure is proposed to improve the prediction accuracy of a JITL soft sensor. By taking the non-Gaussianity of the process data and the characteristics of the query sample into account, a more suitable similarity criterion is defined for sample selection of a JITL soft sensor, and better modeling performance can be achieved. Case studies involving a numerical example and an industrial process are discussed to demonstrate the feasibility and effectiveness of the proposed method.
Keyword:
REGRESSION
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期刊

I
Industrial and Engineering Chemistry Research
IF:
3.9
论文数:
4.0W
被引数:
9.6W

机构

Z
zhejiang university
学者数:
17.7W
论文数: 12.1W
被引数: 152
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