Binary Orthogonal Non-negative Matrix Factorization

arxiv(2022)

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摘要
We propose a method for computing binary orthogonal non-negative matrix factorization (BONMF) for clustering and classification. The method is tested on several representative real-world data sets. The numerical results confirm that the method has improved accuracy compared to the related techniques. The proposed method is fast for training and classification and space efficient.
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关键词
Binary orthogonal non-negative matrix factorization, Non-convex optimization problem, Classification
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