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Infrastructure for estimating probabilistic distributional regression models in a Bayesian framework. The distribution parameters may capture location, scale, shape, etc. and every parameter may depend on complex additive terms (fixed, random, smooth, spatial, etc.) similar to a generalized additive model. The conceptual and computational framework is introduced in Umlauf, Klein, Zeileis (2019) <doi:10.1080/10618600.2017.1407325> and the R package in Umlauf, Klein, Simon, Zeileis (2019) <arXiv:1909.11784>.

copied from cf-staging / r-bamlss
Type Size Name Uploaded Downloads Labels
conda 4.6 MB | win-64/r-bamlss-1.2_0-r41hb9981e2_1.conda  1 year and 8 months ago 442 main
conda 4.6 MB | osx-64/r-bamlss-1.2_0-r43hc46c21c_1.conda  1 year and 8 months ago 222 main
conda 4.6 MB | osx-64/r-bamlss-1.2_0-r42hc46c21c_1.conda  1 year and 8 months ago 193 main
conda 4.6 MB | linux-64/r-bamlss-1.2_0-r42h316c678_1.conda  1 year and 8 months ago 1458 main
conda 4.6 MB | linux-64/r-bamlss-1.2_0-r43h316c678_1.conda  1 year and 8 months ago 1412 main
conda 4.6 MB | win-64/r-bamlss-1.2_0-r41hb9981e2_0.conda  1 year and 8 months ago 461 main
conda 4.6 MB | osx-64/r-bamlss-1.2_0-r42hc46c21c_0.conda  1 year and 8 months ago 216 main
conda 4.6 MB | linux-64/r-bamlss-1.2_0-r42h316c678_0.conda  1 year and 8 months ago 1417 main

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