2021
DOI: 10.3390/app11052040
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A Regularized Mixture of Linear Experts for Quality Prediction in Multimode and Multiphase Industrial Processes

Abstract: This paper proposes the use of a regularized mixture of linear experts (MoLE) for predictive modeling in multimode-multiphase industrial processes. For this purpose, different regularized MoLE were evaluated, namely, through the elastic net (EN), Lasso, and ridge regression (RR) penalties. Their performances were compared when trained with different numbers of samples, and in comparison to other nonlinear predictive models. The models were evaluated on real multiphase polymerization process data. The Lasso pen… Show more

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Cited by 7 publications
(9 citation statements)
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“…multiphase processes) [5]. These modes can be represented in a multi-model (ensemble) structure [6]. This work focuses on modeling processes with multiple operating modes, and the proposed method was created with this in mind.…”
Section: Introductionmentioning
confidence: 99%
See 3 more Smart Citations
“…multiphase processes) [5]. These modes can be represented in a multi-model (ensemble) structure [6]. This work focuses on modeling processes with multiple operating modes, and the proposed method was created with this in mind.…”
Section: Introductionmentioning
confidence: 99%
“…The modeling of multiple operating modes processes follows from rule-based expert systems [7]- [10], clustering [11], Mixture models (MM) [12]- [14], Gaussian mixture regression (GMR) [15], [16], or mixture of experts (MoE) [6], [17] strategies to identify the groups that represent each operational regime, then combine them according to the process's regime. Apart from rule-based expert models, none of the above works discuss using domain knowledge from operators.…”
Section: Introductionmentioning
confidence: 99%
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“…We, the authors, wish to make the following corrections to our paper [1]. We have found that Equations ( 16), ( 21) and ( 22) were stated wrong in the manuscript.…”
mentioning
confidence: 99%