Development of a novel parallel framework upon deep dual‐enhanced autoencoder and its applications for industrial soft sensing

In recent years, data‐driven soft sensing technology has provided a cost‐effective support for industrial process monitoring, in which autoencoder plays an important role in extracting features for soft sensing technology. However, existing autoencoder models take a long time for modelling, and the...

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Bibliographic Details
Published in:Canadian journal of chemical engineering
Main Authors: Chen, Xu, Shao, Weiming, Wei, Chihang
Format: Journal Article
Language:English
Published: 22.07.2025
ISSN:0008-4034, 1939-019X
Online Access:Get full text
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