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30-08-2024 | Original Article

An ordered subsets orthogonal nonnegative matrix factorization framework with application to image clustering

Authors: Limin Ma, Can Tong, Shouliang Qi, Yudong Yao, Yueyang Teng

Published in: International Journal of Machine Learning and Cybernetics | Issue 3/2025

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Abstract

The article presents an innovative ordered subsets orthogonal nonnegative matrix factorization (OS-ONMF) framework for image clustering. Traditional nonnegative matrix factorization (NMF) methods, while effective, involve extensive matrix calculations that can be computationally intensive. The proposed OS-ONMF framework addresses this by dividing the data matrix into subsets, performing NMF on each subset, and iteratively updating the matrix factors. This approach significantly reduces computational complexity while maintaining high clustering performance. The method is validated through experiments on various datasets, showcasing its efficiency and effectiveness, particularly for large-scale and high-dimensional data. The article concludes by highlighting the potential for future research in adaptively setting the number of subsets to further enhance the framework's usability and performance.

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Metadata
Title
An ordered subsets orthogonal nonnegative matrix factorization framework with application to image clustering
Authors
Limin Ma
Can Tong
Shouliang Qi
Yudong Yao
Yueyang Teng
Publication date
30-08-2024
Publisher
Springer Berlin Heidelberg
Published in
International Journal of Machine Learning and Cybernetics / Issue 3/2025
Print ISSN: 1868-8071
Electronic ISSN: 1868-808X
DOI
https://doi.org/10.1007/s13042-024-02350-w