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Lambert W x F distributions are a generalized framework to analyze skewed, heavy-tailed data. It is based on an input/output system, where the output random variable (RV) Y is a non-linearly transformed version of an input RV X ~ F with similar properties as X, but slightly skewed (heavy-tailed). The transformed RV Y has a Lambert W x F distribution. This package contains functions to model and analyze skewed, heavy-tailed data the Lambert Way: simulate random samples, estimate parameters, compute quantiles, and plot/ print results nicely. Probably the most important function is 'Gaussianize', which works similarly to 'scale', but actually makes the data Gaussian. A do-it-yourself toolkit allows users to define their own Lambert W x 'MyFavoriteDistribution' and use it in their analysis right away.

copied from cf-staging / r-lambertw
Type Size Name Uploaded Downloads Labels
conda 740.7 kB | win-64/r-lambertw-0.6.7-r41ha856d6a_0.tar.bz2  3 years and 3 days ago 709 main
conda 770.1 kB | win-64/r-lambertw-0.6.7-r40ha856d6a_0.tar.bz2  3 years and 3 days ago 700 main
conda 738.2 kB | osx-64/r-lambertw-0.6.7-r41hc4bb905_0.tar.bz2  3 years and 3 days ago 75 main
conda 735.3 kB | osx-64/r-lambertw-0.6.7-r40hc4bb905_0.tar.bz2  3 years and 3 days ago 77 main
conda 744.3 kB | linux-64/r-lambertw-0.6.7-r40h7525677_0.tar.bz2  3 years and 3 days ago 2101 main
conda 747.7 kB | linux-64/r-lambertw-0.6.7-r41h7525677_0.tar.bz2  3 years and 3 days ago 2139 main

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