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stressor: Algorithms for Testing Models under Stress

Traditional model evaluation metrics fail to capture model performance under less than ideal conditions. This package employs techniques to evaluate models "under-stress". This includes testing models' extrapolation ability, or testing accuracy on specific sub-samples of the overall model space. Details describing stress-testing methods in this package are provided in Haycock (2023) <doi:10.26076/2am5-9f67>. The other primary contribution of this package is provided to R users access to the 'Python' library 'PyCaret' <https://pycaret.org/> for quick and easy access to auto-tuned machine learning models.

Version:0.2.0
Depends:R (≥ 3.5)
Imports:reticulate, stats,dplyr
Suggests:knitr,rmarkdown,ggplot2,mlbench,testthat (≥ 3.0.0)
Published:2024-05-01
DOI:10.32614/CRAN.package.stressor
Author:Sam Haycock [aut, cre], Brennan Bean [aut], Utah State University [cph, fnd], Thermo Fisher Scientific Inc. [fnd]
Maintainer:Sam Haycock <haycock.sam at outlook.com>
License:MIT + fileLICENSE
NeedsCompilation:no
SystemRequirements:python(>=3.8.10)
Materials:README
CRAN checks:stressor results

Documentation:

Reference manual:stressor.html ,stressor.pdf
Vignettes:stressor (source,R code)

Downloads:

Package source: stressor_0.2.0.tar.gz
Windows binaries: r-devel:stressor_0.2.0.zip, r-release:stressor_0.2.0.zip, r-oldrel:stressor_0.2.0.zip
macOS binaries: r-release (arm64):stressor_0.2.0.tgz, r-oldrel (arm64):stressor_0.2.0.tgz, r-release (x86_64):stressor_0.2.0.tgz, r-oldrel (x86_64):stressor_0.2.0.tgz
Old sources: stressor archive

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