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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 02:28:07 2025
md5 checksum 0f7706e9f4a8cfdd609cfa246a466234
arch x86_64
build py39h1128e8f_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 >=3.9,<3.10.0a0, scikit-learn, scipy, slicer 0.0.7.*, tqdm >4.25.0
license MIT
license_family MIT
md5 0f7706e9f4a8cfdd609cfa246a466234
name shap
platform linux
sha1 ae8296938ec712f234930ef62ce7f6ac47e653c8
sha256 d7a94c1e8d04ff7f8b849fa87481abedef79760220567a2b9dc159609aeb8cb1
size 573181
subdir linux-64
timestamp 1684917171114
version 0.41.0