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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 02:28:02 2025
md5 checksum eb13d46ececa7b84fbc3c9abded940c9
arch x86_64
build py310h1128e8f_0
depends cloudpickle, libgcc-ng >=11.2.0, libstdcxx-ng >=11.2.0, numba, numpy >=1.21.5,<2.0a0, packaging >20.9, pandas, python >=3.10,<3.11.0a0, scikit-learn, scipy, slicer 0.0.7.*, tqdm >=4.27.0
license MIT
license_family MIT
md5 eb13d46ececa7b84fbc3c9abded940c9
name shap
platform linux
sha1 e09186ba499420934fc75314ef9641ba5bae30d6
sha256 91134a63d7cf65fd0e196e9360e190f080cd925a2edf20dc6286228c7c774196
size 590055
subdir linux-64
timestamp 1692866055408
version 0.42.1