Robust stochastic configuration networks for industrial data modelling with Student’s-t mixture distribution

Data collected from industrial sites commonly contains outliers or noise that obey unknown distributions, making it challenging to establish an accurate data-driven model. Therefore, this paper proposes a novel robust stochastic configuration network based on a Student’s-t mixture distribution (term...

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Bibliographic Details
Published in:Information sciences Vol. 607; pp. 493 - 505
Main Authors: Yan, Aijun, Guo, Jingcheng, Wang, Dianhui
Format: Journal Article
Language:English
Published: Elsevier Inc 01.08.2022
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ISSN:0020-0255, 1872-6291
Online Access:Get full text
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