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Exploratory data analysis methods to summarize, visualize and describe datasets. The main principal component methods are available, those with the largest potential in terms of applications: principal component analysis (PCA) when variables are quantitative, correspondence analysis (CA) and multiple correspondence analysis (MCA) when variables are categorical, Multiple Factor Analysis when variables are structured in groups, etc. and hierarchical cluster analysis. F. Husson, S. Le and J. Pages (2017).

copied from cf-post-staging / r-factominer
Type Size Name Uploaded Downloads Labels
conda 3.6 MB | win-64/r-factominer-2.9-r41h6d2157b_0.conda  2 years and 7 months ago 561 main
conda 3.6 MB | linux-ppc64le/r-factominer-2.9-r42h9da1b96_0.conda  2 years and 7 months ago 218 main
conda 3.6 MB | linux-ppc64le/r-factominer-2.9-r43h9da1b96_0.conda  2 years and 7 months ago 227 main
conda 3.6 MB | osx-64/r-factominer-2.9-r43hb2c329c_0.conda  2 years and 7 months ago 423 main
conda 3.6 MB | osx-64/r-factominer-2.9-r42hb2c329c_0.conda  2 years and 7 months ago 371 main
conda 3.6 MB | linux-64/r-factominer-2.9-r42h57805ef_0.conda  2 years and 7 months ago 3221 main
conda 3.6 MB | linux-64/r-factominer-2.9-r43h57805ef_0.conda  2 years and 7 months ago 3204 main
conda 3.6 MB | linux-aarch64/r-factominer-2.9-r42h9d23599_0.conda  2 years and 7 months ago 245 main
conda 3.6 MB | linux-aarch64/r-factominer-2.9-r43h9d23599_0.conda  2 years and 7 months ago 241 main

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