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studyStrap: Study Strap and Multi-Study Learning Algorithms

Implements multi-study learning algorithms such as merging, the study-specific ensemble (trained-on-observed-studies ensemble) the study strap, the covariate-matched study strap, covariate-profile similarity weighting, and stacking weights. Embedded within the 'caret' framework, this package allows for a wide range of single-study learners (e.g., neural networks, lasso, random forests). The package offers over 20 default similarity measures and allows for specification of custom similarity measures for covariate-profile similarity weighting and an accept/reject step. This implements methods described in Loewinger, Kishida, Patil, and Parmigiani. (2019)<doi:10.1101/856385>.

Version:1.0.0
Depends:R (≥ 3.1)
Imports:caret,tidyverse (≥ 1.2.1),pls (≥ 2.7-1),nnls (≥ 1.4),CCA (≥ 1.2),MatrixCorrelation (≥ 0.9.2),dplyr (≥ 0.8.2),tibble (≥ 2.1.3)
Suggests:knitr,rmarkdown
Published:2020-02-20
DOI:10.32614/CRAN.package.studyStrap
Author:Gabriel LoewingerORCID iD [aut, cre], Giovanni Parmigiani [ths], Prasad Patil [sad], National Science Foundation Grant DMS1810829 [fnd], National Institutes of Health Grant T32 AI 007358 [fnd]
Maintainer:Gabriel Loewinger <gloewinger at gmail.com>
License:MIT + fileLICENSE
NeedsCompilation:no
CRAN checks:studyStrap results

Documentation:

Reference manual:studyStrap.html ,studyStrap.pdf
Vignettes:Introduction to studyStrap (source,R code)

Downloads:

Package source: studyStrap_1.0.0.tar.gz
Windows binaries: r-devel:studyStrap_1.0.0.zip, r-release:studyStrap_1.0.0.zip, r-oldrel:studyStrap_1.0.0.zip
macOS binaries: r-release (arm64):studyStrap_1.0.0.tgz, r-oldrel (arm64):studyStrap_1.0.0.tgz, r-release (x86_64):studyStrap_1.0.0.tgz, r-oldrel (x86_64):studyStrap_1.0.0.tgz

Linking:

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


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