Stacked semi-supervised autoencoder-regularized RVFLNs for reliable prediction of molten iron quality in blast furnace

This paper proposes a novel stacked semi-supervised autoencoder-regularized random vector functional-link networks (RVFLNs) for reliable prediction of molten iron quality (MIQ) in blast furnace (BF) ironmaking. First, in order to accurately describe the importance of different process variables on t...

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Bibliographic Details
Published in:Neural computing & applications Vol. 37; no. 17; pp. 10425 - 10438
Main Authors: Zhou, Ping, Zhao, Peng, Ou, Zihui, Chai, Tianyou
Format: Journal Article
Language:English
Published: London Springer London 01.06.2025
Springer Nature B.V
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ISSN:0941-0643, 1433-3058
Online Access:Get full text
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