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r / packages / r-monomvn

Estimation of multivariate normal and student-t data of arbitrary dimension where the pattern of missing data is monotone. Through the use of parsimonious/shrinkage regressions (plsr, pcr, lasso, ridge, etc.), where standard regressions fail, the package can handle a nearly arbitrary amount of missing data. The current version supports maximum likelihood inference and a full Bayesian approach employing scale-mixtures for Gibbs sampling. Monotone data augmentation extends this Bayesian approach to arbitrary missingness patterns. A fully functional standalone interface to the Bayesian lasso (from Park & Casella), Normal-Gamma (from Griffin & Brown), Horseshoe (from Carvalho, Polson, & Scott), and ridge regression with model selection via Reversible Jump, and student-t errors (from Geweke) is also provided.

Type Size Name Uploaded Downloads Labels
conda 1.2 MB | win-64/r-monomvn-1.9_10-r36h5b3a9a7_0.tar.bz2  4 years and 11 months ago 79 main
conda 1.2 MB | osx-64/r-monomvn-1.9_10-r36hbe7ee20_0.tar.bz2  4 years and 11 months ago 18 main
conda 1.2 MB | linux-64/r-monomvn-1.9_10-r36h80f5a37_0.tar.bz2  4 years and 11 months ago 63 main

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