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Efficient algorithms for fitting the regularization path of linear regression, GLM, and Cox regression models with grouped penalties. This includes group selection methods such as group lasso, group MCP, and group SCAD as well as bi-level selection methods such as the group exponential lasso, the composite MCP, and the group bridge. For more information, see Breheny and Huang (2009) <doi:10.4310/sii.2009.v2.n3.a10>, Huang, Breheny, and Ma (2012) <doi:10.1214/12-sts392>, Breheny and Huang (2015) <doi:10.1007/s11222-013-9424-2>, and Breheny (2015) <doi:10.1111/biom.12300>, or visit the package homepage <https://pbreheny.github.io/grpreg/>.
Version: | 3.5.0 |
Depends: | R (≥ 3.1.0) |
Imports: | Matrix |
Suggests: | knitr, rmarkdown, splines, survival, tinytest |
Published: | 2024-09-03 |
DOI: | 10.32614/CRAN.package.grpreg |
Author: | Patrick Breheny [aut, cre], Yaohui Zeng [ctb], Ryan Kurth [ctb] |
Maintainer: | Patrick Breheny <patrick-breheny at uiowa.edu> |
BugReports: | https://github.com/pbreheny/grpreg/issues |
License: | GPL-3 |
URL: | https://pbreheny.github.io/grpreg/, https://github.com/pbreheny/grpreg |
NeedsCompilation: | yes |
Citation: | grpreg citation info |
Materials: | README NEWS |
In views: | MachineLearning |
CRAN checks: | grpreg results |
Reference manual: | grpreg.pdf |
Vignettes: |
Getting started with grpreg (source, R code) |
Package source: | grpreg_3.5.0.tar.gz |
Windows binaries: | r-devel: grpreg_3.5.0.zip, r-release: grpreg_3.5.0.zip, r-oldrel: grpreg_3.5.0.zip |
macOS binaries: | r-release (arm64): grpreg_3.5.0.tgz, r-oldrel (arm64): grpreg_3.5.0.tgz, r-release (x86_64): grpreg_3.5.0.tgz, r-oldrel (x86_64): grpreg_3.5.0.tgz |
Old sources: | grpreg archive |
Reverse depends: | fsemipar |
Reverse imports: | bestglm, DMRnet, geoGAM, kko, mixedLSR, MTAFT, naivereg, NVCSSL, PCLassoReg, refund, SSGL |
Reverse suggests: | riskRegression, spfda |
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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.