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RRF: Regularized Random Forest

Feature Selection with Regularized Random Forest. This package is based on the 'randomForest' package by Andy Liaw. The key difference is the RRF() function that builds a regularized random forest. Fortran original by Leo Breiman and Adele Cutler, R port by Andy Liaw and Matthew Wiener, Regularized random forest for classification by Houtao Deng, Regularized random forest for regression by Xin Guan. Reference: Houtao Deng (2013) <doi:10.48550/arXiv.1306.0237>.

Version: 1.9.4
Depends: R (≥ 2.5.0), stats
Suggests: RColorBrewer, MASS
Published: 2022-05-30
Author: Houtao Deng [aut, cre], Xin Guan [aut], Andy Liaw [aut], Leo Breiman [aut], Adele Cutler [aut]
Maintainer: Houtao Deng <softwaredeng at gmail.com>
License: GPL-2 | GPL-3 [expanded from: GPL (≥ 2)]
URL: https://sites.google.com/site/houtaodeng/rrf
NeedsCompilation: yes
Citation: RRF citation info
Materials: NEWS
CRAN checks: RRF results

Documentation:

Reference manual: RRF.pdf

Downloads:

Package source: RRF_1.9.4.tar.gz
Windows binaries: r-devel: RRF_1.9.4.zip, r-release: RRF_1.9.4.zip, r-oldrel: RRF_1.9.4.zip
macOS binaries: r-release (arm64): RRF_1.9.4.tgz, r-oldrel (arm64): RRF_1.9.4.tgz, r-release (x86_64): RRF_1.9.4.tgz, r-oldrel (x86_64): RRF_1.9.4.tgz
Old sources: RRF archive

Reverse dependencies:

Reverse imports: CRE, inTrees
Reverse suggests: fscaret, mlr

Linking:

Please use the canonical form https://CRAN.R-project.org/package=RRF to link to this page.

These binaries (installable software) and packages are in development.
They may not be fully stable and should be used with caution. We make no claims about them.
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