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main / packages / category_encoders 2.6.3

A collection sklearn transformers to encode categorical variables as numeric

Installers

  • linux-64 v2.6.3
  • linux-aarch64 v2.6.3
  • linux-s390x v2.6.3
  • osx-64 v2.6.3
  • osx-arm64 v2.6.3
  • win-64 v2.6.3
  • noarch v2.2.2
  • linux-ppc64le v2.6.1

conda install

To install this package run one of the following:
conda install main::category_encoders

Description

A set of scikit-learn-style transformers for encoding categorical variables into numeric with different techniques. While ordinal, one-hot, and hashing encoders have similar equivalents in the existing scikit-learn version, the transformers in this library all share a few useful properties: - First-class support for pandas dataframes as an input (and optionally as output) - Can explicitly configure which columns in the data are encoded by name or index, or infer non-numeric columns regardless of input type - Can drop any columns with very low variance based on training set optionally - Portability: train a transformer on data, pickle it, reuse it later and get the same thing out. - Full compatibility with sklearn pipelines, input an array-like dataset like any other transformer


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