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penaltyLearning: Penalty Learning

Implementations of algorithms from Learning Sparse Penalties for Change-point Detection using Max Margin Interval Regression, by Hocking, Rigaill, Vert, Bach <http://proceedings.mlr.press/v28/hocking13.html> published in proceedings of ICML2013.

Version:2024.9.3
Depends:R (≥ 2.10)
Imports:data.table (≥ 1.9.8),ggplot2
Suggests:neuroblastoma,jointseg,testthat,future,future.apply,directlabels (≥ 2017.03.31)
Published:2024-10-02
DOI:10.32614/CRAN.package.penaltyLearning
Author:Toby Dylan Hocking [aut, cre]
Maintainer:Toby Dylan Hocking <toby.hocking at r-project.org>
BugReports:https://github.com/tdhock/penaltyLearning/issues
License:GPL-3
URL:https://github.com/tdhock/penaltyLearning
NeedsCompilation:yes
Materials:NEWS
CRAN checks:penaltyLearning results

Documentation:

Reference manual:penaltyLearning.html ,penaltyLearning.pdf

Downloads:

Package source: penaltyLearning_2024.9.3.tar.gz
Windows binaries: r-devel:penaltyLearning_2024.9.3.zip, r-release:penaltyLearning_2024.9.3.zip, r-oldrel:penaltyLearning_2024.9.3.zip
macOS binaries: r-release (arm64):penaltyLearning_2024.9.3.tgz, r-oldrel (arm64):penaltyLearning_2024.9.3.tgz, r-release (x86_64):penaltyLearning_2024.9.3.tgz, r-oldrel (x86_64):penaltyLearning_2024.9.3.tgz
Old sources: penaltyLearning archive

Reverse dependencies:

Reverse imports:PeakSegJoint,PeakSegOptimal
Reverse suggests:aum,binsegRcpp,PeakSegDP

Linking:

Please use the canonical formhttps://CRAN.R-project.org/package=penaltyLearningto link to this page.


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