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A self-tuning spectral clustering method for single or multi-view data. 'Spectrum' uses a new type of adaptive density aware kernel that strengthens connections in the graph based on common nearest neighbours. It uses a tensor product graph data integration and diffusion procedure to integrate different data sources and reduce noise. 'Spectrum' uses either the eigengap or multimodality gap heuristics to determine the number of clusters. The method is sufficiently flexible so that a wide range of Gaussian and non-Gaussian structures can be clustered with automatic selection of K.

copied from cf-post-staging / r-spectrum
Type Size Name Uploaded Downloads Labels
conda 3.4 MB | noarch/r-spectrum-1.1-r44hc72bb7e_2.conda  6 months and 2 days ago 363 main
conda 3.4 MB | noarch/r-spectrum-1.1-r45hc72bb7e_2.conda  6 months and 2 days ago 355 main
conda 3.4 MB | noarch/r-spectrum-1.1-r43hc72bb7e_1.conda  1 year and 7 months ago 1293 main
conda 3.4 MB | noarch/r-spectrum-1.1-r44hc72bb7e_1.conda  1 year and 7 months ago 1234 main
conda 3.4 MB | noarch/r-spectrum-1.1-r43hc72bb7e_0.conda  1 year and 8 months ago 1302 main

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