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A general framework for constructing variable importance plots from various types of machine learning models in R. Aside from some standard model- specific variable importance measures, this package also provides model- agnostic approaches that can be applied to any supervised learning algorithm. These include an efficient permutation-based variable importance measure as well as novel approaches based on partial dependence plots (PDPs) and individual conditional expectation (ICE) curves which are described in Greenwell et al. (2018) <arXiv:1805.04755>. An experimental method for quantifying the relative strength of interaction effects is also included (see the previous reference for details).

copied from cf-post-staging / r-vip
Type Size Name Uploaded Downloads Labels
conda 2.4 MB | noarch/r-vip-0.4.1-r45hc72bb7e_2.conda  15 days and 9 hours ago 76 main
conda 2.4 MB | noarch/r-vip-0.4.1-r44hc72bb7e_2.conda  15 days and 9 hours ago 84 main
conda 2.4 MB | noarch/r-vip-0.4.1-r43hc72bb7e_1.conda  1 year and 2 months ago 1510 main
conda 2.4 MB | noarch/r-vip-0.4.1-r44hc72bb7e_1.conda  1 year and 2 months ago 1294 main
conda 2.3 MB | noarch/r-vip-0.4.1-r43hc72bb7e_0.conda  2 years and 1 month ago 1874 main
conda 2.3 MB | noarch/r-vip-0.4.1-r42hc72bb7e_0.conda  2 years and 1 month ago 1758 main

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