2022
DOI: 10.1021/acs.iecr.2c00335
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Machine Learning Algorithms Used in PSE Environments: A Didactic Approach and Critical Perspective

Abstract: This work addresses recent developments for solving problems in process systems engineering based on machine learning algorithms. A general description of most popular supervised and unsupervised learning algorithms is presented, as well as the applications addressed in the current literature. Because of their wide usage and potential applications, support vector machines and neural networks are addressed as special cases. The approach used is fundamentally didactic. Therefore, several of the references includ… Show more

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Cited by 15 publications
(7 citation statements)
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“…For an extensive discussion on the impact of AI in chemical engineering, we recommend reading Venkatasubramanian [285]. Regarding the specific impact of machine learning, several works have been published [16,[288][289][290][291][292][293][294][295].…”
Section: Machine Learningmentioning
confidence: 99%
“…For an extensive discussion on the impact of AI in chemical engineering, we recommend reading Venkatasubramanian [285]. Regarding the specific impact of machine learning, several works have been published [16,[288][289][290][291][292][293][294][295].…”
Section: Machine Learningmentioning
confidence: 99%
“…1 Due to huge data in practical situation, deep learning have been proposed to establish a datadriven method to analyze complex relationship. 2 In the era of intelligent manufacturing of chemical processes, it is vital to ensure the safe operation of these processes, which makes fault detection and diagnosis (FDD) technology a research hotspot. 3 Because of the complexity of chemical processes, abnormal process conditions may cause significant casualties and property losses.…”
Section: Introductionmentioning
confidence: 99%
“…Several ML approaches (Mojto et al, 2021;Oeing et al, 2021;Fuentes-Cortés et al, 2022) were employed to aid decision making in industrial columns. A subset of unsupervised ML approaches, such as k-means clustering (Forgy, 1965) or principal component analysis (PCA) (Pearson, 1901), consider no prior knowledge about the model outcome.…”
Section: Introductionmentioning
confidence: 99%