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r-rcppdpr

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'Rcpp' reimplementation of the the Bayesian non-parametric Dirichlet Process Regression model for penalized regression first published in Zeng and Zhou (2017) <doi:10.1038/s41467-017-00470-2>. A full Bayesian version is implemented with Gibbs sampling, as well as a faster but less accurate variational Bayes approximation.

Installation

To install this package, run one of the following:

Conda
$conda install conda-forge::r-rcppdpr

Usage Tracking

0.1.10
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About

Summary

'Rcpp' reimplementation of the the Bayesian non-parametric Dirichlet Process Regression model for penalized regression first published in Zeng and Zhou (2017) <doi:10.1038/s41467-017-00470-2>. A full Bayesian version is implemented with Gibbs sampling, as well as a faster but less accurate variational Bayes approximation.

Last Updated

Apr 22, 2025 at 22:18

License

GPL-3.0-only

Supported Platforms

macOS-arm64
win-64
macOS-64
linux-ppc64le
linux-aarch64
linux-64