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The R package 'ashr' implements an Empirical Bayes approach for large-scale hypothesis testing and false discovery rate (FDR) estimation based on the methods proposed in M. Stephens, 2016, "False discovery rates: a new deal", <DOI:10.1093/biostatistics/kxw041>. These methods can be applied whenever two sets of summary statistics---estimated effects and standard errors---are available, just as 'qvalue' can be applied to previously computed p-values. Two main interfaces are provided: ash(), which is more user-friendly; and ash.workhorse(), which has more options and is geared toward advanced users. The ash() and ash.workhorse() also provides a flexible modeling interface that can accomodate a variety of likelihoods (e.g., normal, Poisson) and mixture priors (e.g., uniform, normal).

Type Size Name Uploaded Downloads Labels
conda 407.7 kB | linux-64/r-ashr-2.2.51.dev1-r35hf484d3e_0.tar.bz2  4 years and 1 month ago 10 main
conda 410.5 kB | linux-64/r-ashr-2.2.39.dev1-r36hf484d3e_0.tar.bz2  4 years and 6 months ago 4 main
conda 403.4 kB | linux-64/r-ashr-2.2.39.dev1-r351hf484d3e_0.tar.bz2  5 years and 23 days ago 4 main
conda 402.9 kB | linux-64/r-ashr-2.2.32.dev1-r351hf484d3e_0.tar.bz2  5 years and 7 months ago 2 main
conda 1.2 MB | linux-64/r-ashr-2.2.32-r351h29659fb_0.tar.bz2  5 years and 7 months ago 3 main

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