Discrete Nonnegative Spectral Clustering.

IEEE Transactions on Knowledge and Data Engineering(2017)

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摘要
Spectral clustering has been playing a vital role in various research areas. Most traditional spectral clustering algorithms comprise two independent stages (e.g., first learning continuous labels and then rounding the learned labels into discrete ones), which may cause unpredictable deviation of resultant cluster labels from genuine ones, thereby leading to severe information loss and performance...
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关键词
Clustering algorithms,Predictive models,Robustness,Optimization,Matrix decomposition,Biological system modeling,Laplace equations
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