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crossurr: Cross-Fitting for Doubly Robust Evaluation of High-DimensionalSurrogate Markers

Doubly robust methods for evaluating surrogate markers as outlined in: Agniel D, Hejblum BP, Thiebaut R & Parast L (2022). "Doubly robust evaluation of high-dimensional surrogate markers", Biostatistics <doi:10.1093/biostatistics/kxac020>. You can use these methods to determine how much of the overall treatment effect is explained by a (possibly high-dimensional) set of surrogate markers.

Version:1.1.2
Depends:R (≥ 3.6.0)
Imports:dplyr,gbm,glmnet,glue, parallel,pbapply,purrr,ranger,RCAL,rlang,SIS, stats,SuperLearner,tibble,tidyr
Published:2025-04-08
DOI:10.32614/CRAN.package.crossurr
Author:Denis Agniel [aut, cre], Boris P. Hejblum [aut], Layla Parast [aut]
Maintainer:Denis Agniel <dagniel at rand.org>
License:MIT + fileLICENSE
NeedsCompilation:no
Citation:crossurr citation info
Materials:README,NEWS
CRAN checks:crossurr results

Documentation:

Reference manual:crossurr.html ,crossurr.pdf

Downloads:

Package source: crossurr_1.1.2.tar.gz
Windows binaries: r-devel:crossurr_1.1.2.zip, r-release:crossurr_1.1.2.zip, r-oldrel:crossurr_1.1.2.zip
macOS binaries: r-release (arm64):crossurr_1.1.2.tgz, r-oldrel (arm64):crossurr_1.1.2.tgz, r-release (x86_64):crossurr_1.1.2.tgz, r-oldrel (x86_64):crossurr_1.1.2.tgz
Old sources: crossurr archive

Linking:

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


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