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Kernel-based methods are powerful methods for integrating heterogeneous types of data. mixKernel aims at providing methods to combine kernel for unsupervised exploratory analysis. Different solutions are provided to compute a meta-kernel, in a consensus way or in a way that best preserves the original topology of the data. mixKernel also integrates kernel PCA to visualize similarities between samples in a non linear space and from the multiple source point of view. Functions to assess and display important variables are also provided in the package. Jerome Mariette and Nathalie Villa-Vialaneix (2017) <doi:10.1093/bioinformatics/btx682>.

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conda 959.5 kB | noarch/r-mixkernel-0.3-r36h6115d3f_1.tar.bz2  5 years and 1 month ago 2205 main
conda 952.6 kB | linux-64/r-mixkernel-0.3-r351h6115d3f_0.tar.bz2  5 years and 9 months ago 281 main
conda 952.5 kB | osx-64/r-mixkernel-0.3-r351h6115d3f_0.tar.bz2  5 years and 9 months ago 1880 main

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