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r-grpreg

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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.

Installation

To install this package, run one of the following:

Conda
$conda install r_test::r-grpreg

Usage Tracking

3.2_1
1 / 8 versions selected
Downloads (Last 6 months): 0

About

Summary

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.

Last Updated

May 6, 2019 at 17:41

License

GPL-3

Total Downloads

16

Version Downloads

16

Supported Platforms

linux-64
win-32
macOS-64
win-64