CRAN/E | mcmcabn

mcmcabn

Flexible Implementation of a Structural MCMC Sampler for DAGs

Installation

About

Flexible implementation of a structural MCMC sampler for Directed Acyclic Graphs (DAGs). It supports the new edge reversal move from Grzegorczyk and Husmeier (2008) doi:10.1007/s10994-008-5057-7 and the Markov blanket resampling from Su and Borsuk (2016) . It supports three priors: a prior controlling for structure complexity from Koivisto and Sood (2004) , an uninformative prior and a user-defined prior. The three main problems that can be addressed by this R package are selecting the most probable structure based on a cache of pre-computed scores, controlling for overfitting, and sampling the landscape of high scoring structures. It allows us to quantify the marginal impact of relationships of interest by marginalizing out over structures or nuisance dependencies. Structural MCMC seems an elegant and natural way to estimate the true marginal impact, so one can determine if it's magnitude is big enough to consider as a worthwhile intervention.

Citation mcmcabn citation info
www.math.uzh.ch/pages/mcmcabn/
Bug report File report

Key Metrics

Version 0.6
R ≥ 3.5.0
Published 2023-09-28 352 days ago
Needs compilation? no
License GPL-3
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Maintainer

Maintainer

Annina Cincera

Authors

Gilles Kratzer

aut

Reinhard Furrer

ctb

Annina Cincera

cre

Material

Reference manual
Package source

Vignettes

mcmcabn

macOS

r-release

arm64

r-oldrel

arm64

r-release

x86_64

r-oldrel

x86_64

Windows

r-devel

x86_64

r-release

x86_64

r-oldrel

x86_64

Old Sources

mcmcabn archive

Depends

R ≥ 3.5.0

Imports

abn ≥ 3.0.0
coda
gRbase
ggplot2
cowplot
ggpubr

Suggests

bnlearn
knitr
rmarkdown
ggdag
testthat