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stressor

Algorithms for Testing Models under Stress

v0.2.0 · Apr 30, 2024 · MIT + file LICENSE

Description

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.

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OK 14 OK · 0 NOTE · 0 WARNING · 0 ERROR · 0 FAILURE Mar 10, 2026

Dependency Network

Dependencies Reverse dependencies reticulate dplyr stressor

Version History

3 tracked
new 0.2.0 Mar 10, 2026
updated 0.2.0 ← 0.1.0 diff Apr 30, 2024
new 0.1.0 Jan 30, 2024