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When building complex models, it is often difficult to explain why the model should be trusted. While global measures such as accuracy are useful, they cannot be used for explaining why a model made a specific prediction. 'lime' (a port of the 'lime' 'Python' package) is a method for explaining the outcome of black box models by fitting a local model around the point in question an perturbations of this point. The approach is described in more detail in the article by Ribeiro et al. (2016) <arXiv:1602.04938>.

copied from cf-post-staging / r-lime
Type Size Name Uploaded Downloads Labels
conda 1.4 MB | win-64/r-lime-0.5.1-r36h796a38f_0.tar.bz2  5 years and 10 months ago 1234 main cf202003
conda 1.4 MB | win-64/r-lime-0.5.1-r35h796a38f_0.tar.bz2  5 years and 10 months ago 1205 main cf202003
conda 1.4 MB | osx-64/r-lime-0.5.1-r35hc5da6b9_0.tar.bz2  5 years and 10 months ago 363 main cf202003
conda 1.4 MB | osx-64/r-lime-0.5.1-r36hc5da6b9_0.tar.bz2  5 years and 10 months ago 375 main cf202003
conda 1.4 MB | linux-64/r-lime-0.5.1-r36h0357c0b_0.tar.bz2  5 years and 10 months ago 4025 main cf202003
conda 1.4 MB | linux-64/r-lime-0.5.1-r35h0357c0b_0.tar.bz2  5 years and 10 months ago 3995 main cf202003

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