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This project is about explaining what machine learning classifiers (or models) are doing. At the moment, it supports explaining individual predictions for text classifiers or classifiers that act on tables (numpy arrays of numerical or categorical data) or images, with a package called lime (short for local interpretable model-agnostic explanations).

Uploaded Sun Mar 30 23:45:47 2025
md5 checksum 26f3819dbf6e06a3ff7e487e1a0a780b
arch x86_64
build py312h06a4308_0
depends matplotlib-base, numpy <2.0a0, python >=3.12,<3.13.0a0, scikit-image >=0.12, scikit-learn >=0.18, scipy, tqdm
license BSD-2-Clause
license_family BSD
md5 26f3819dbf6e06a3ff7e487e1a0a780b
name lime
platform linux
sha1 97fd517e50acf79f29b6b4e1a71ed57f565b935f
sha256 bae1cfb7871ee546a663565e0d3df51a5635484b5e484ab689028d74c841ced5
size 290094
subdir linux-64
timestamp 1707361206599
version 0.2.0.1