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We efficiently approximate leave-one-out cross-validation (LOO) using Pareto smoothed importance sampling (PSIS), a new procedure for regularizing importance weights. As a byproduct of our calculations, we also obtain approximate standard errors for estimated predictive errors, and for the comparison of predictive errors between two models. We also compute the widely applicable information criterion (WAIC).

Type Size Name Uploaded Downloads Labels
conda 63.2 kB | win-64/r-loo-0.1.3-r3.2.2_0.tar.bz2  8 years and 10 months ago 56 main
conda 63.3 kB | win-32/r-loo-0.1.3-r3.2.2_0.tar.bz2  8 years and 10 months ago 58 main
conda 63.2 kB | osx-64/r-loo-0.1.3-r3.2.2_0.tar.bz2  8 years and 10 months ago 55 main
conda 63.2 kB | linux-64/r-loo-0.1.3-r3.2.2_0.tar.bz2  8 years and 10 months ago 59 main
conda 63.2 kB | linux-32/r-loo-0.1.3-r3.2.2_0.tar.bz2  8 years and 10 months ago 60 main
conda 63.2 kB | linux-64/r-loo-0.1.3-r3.2.1_0.tar.bz2  9 years and 5 months ago 64 main

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