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ROC graphs, sensitivity/specificity curves, lift charts, and precision/recall plots are popular examples of trade-off visualizations for specific pairs of performance measures. ROCR is a flexible tool for creating cutoff-parameterized 2D performance curves by freely combining two from over 25 performance measures (new performance measures can be added using a standard interface). Curves from different cross-validation or bootstrapping runs can be averaged by different methods, and standard deviations, standard errors or box plots can be used to visualize the variability across the runs. The parameterization can be visualized by printing cutoff values at the corresponding curve positions, or by coloring the curve according to cutoff. All components of a performance plot can be quickly adjusted using a flexible parameter dispatching mechanism. Despite its flexibility, ROCR is easy to use, with only three commands and reasonable default values for all optional parameters.

copied from cf-staging / r-rocr
  • License: GPL-2.0-or-later
  • 174691 total downloads
  • Last upload: 3 months and 24 days ago

Installers

Info: This package contains files in non-standard labels.
  • linux-64 v1.0_7
  • linux-ppc64le v1.0_11
  • osx-arm64 v1.0_11
  • linux-aarch64 v1.0_11
  • osx-64 v1.0_7
  • win-64 v1.0_7
  • noarch v1.0_7

conda install

To install this package run one of the following:
conda install conda-forge::r-rocr
conda install conda-forge/label/cf201901::r-rocr
conda install conda-forge/label/cf202003::r-rocr
conda install conda-forge/label/gcc7::r-rocr

Description


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