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CRAN: Package SelectBoost

SelectBoost: A General Algorithm to Enhance the Performance of Variable Selection Methods in Correlated Datasets

An implementation of the selectboost algorithm (Bertrand et al. 2020, 'Bioinformatics', <doi:10.1093/bioinformatics/btaa855>), which is a general algorithm that improves the precision of any existing variable selection method. This algorithm is based on highly intensive simulations and takes into account the correlation structure of the data. It can either produce a confidence index for variable selection or it can be used in an experimental design planning perspective.

Version: 2.2.2 Depends: R (≥ 2.10) Imports: lars, glmnet, igraph, parallel, msgps, Rfast, methods, Cascade, graphics, grDevices, varbvs, spls, abind Suggests: knitr, markdown, rmarkdown, mixOmics, CascadeData Published: 2022-11-30 DOI: 10.32614/CRAN.package.SelectBoost Author: Frederic Bertrand [cre, aut], Myriam Maumy-Bertrand [aut], Ismail Aouadi [ctb], Nicolas Jung [ctb] Maintainer: Frederic Bertrand <frederic.bertrand at utt.fr> BugReports: https://github.com/fbertran/SelectBoost/issues/ License: GPL-3 URL: https://fbertran.github.io/SelectBoost/, https://github.com/fbertran/SelectBoost/ NeedsCompilation: no Classification/MSC: 62H11, 62J12, 62J99 Citation: SelectBoost citation info Materials: README NEWS CRAN checks: SelectBoost results Documentation: Downloads: Reverse dependencies: Linking:

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