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17-07-2024 | Original Article

One-step graph-based multi-view clustering via specific and unified nonnegative embeddings

Authors: Sally El Hajjar, Fahed Abdallah, Hichem Omrani, Alain Khaled Chaaban, Muhammad Arif, Ryan Alturki, Mohammed J. AlGhamdi

Published in: International Journal of Machine Learning and Cybernetics | Issue 12/2024

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Abstract

The article presents a cutting-edge multi-view clustering method called MCSUNE, which addresses the limitations of traditional clustering techniques. By learning specific and unified nonnegative embeddings, MCSUNE simultaneously optimizes crucial components such as spectral representations and view weights. This approach eliminates the need for post-processing steps, inheriting advantages from matrix factorization techniques. Extensive experimental results demonstrate the superior performance of MCSUNE compared to other competing methods, highlighting its effectiveness across various datasets and sizes. The method's novelty lies in its ability to generate the final clustering assignment directly from the unified nonnegative embedding matrix, significantly improving clustering outcomes.

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Metadata
Title
One-step graph-based multi-view clustering via specific and unified nonnegative embeddings
Authors
Sally El Hajjar
Fahed Abdallah
Hichem Omrani
Alain Khaled Chaaban
Muhammad Arif
Ryan Alturki
Mohammed J. AlGhamdi
Publication date
17-07-2024
Publisher
Springer Berlin Heidelberg
Published in
International Journal of Machine Learning and Cybernetics / Issue 12/2024
Print ISSN: 1868-8071
Electronic ISSN: 1868-808X
DOI
https://doi.org/10.1007/s13042-024-02280-7