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SHAP (SHapley Additive exPlanations) is a unified approach to explain the output of any machine learning model. SHAP connects game theory with local explanations, uniting several previous methods and representing the only possible consistent and locally accurate additive feature attribution method based on expectations.

Uploaded Mon Mar 31 02:28:05 2025
md5 checksum 047f9f14c174811a29a001f8cd79e199
arch x86_64
build py311ha02d727_1
build_number 1
depends cloudpickle, libgcc-ng >=11.2.0, libstdcxx-ng >=11.2.0, numba, numpy <2.0a0, packaging >20.9, pandas, python >=3.11,<3.12.0a0, scikit-learn, scipy, slicer 0.0.7.*, tqdm >4.25.0
license MIT
license_family MIT
md5 047f9f14c174811a29a001f8cd79e199
name shap
platform linux
sha1 5c1c3306df6a3bffc7f157cdb682681b6c55c627
sha256 12bf16c469305a62d5290cf2dbbe5017b8448538745d178ebc77cb42f7a3737c
size 749383
subdir linux-64
timestamp 1684917312632
version 0.41.0