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DataShapley

Data Shapley: Equitable Valuation of Data for Machine Learning

Install / Use

/learn @amiratag/DataShapley
About this skill

Quality Score

0/100

Supported Platforms

Universal

README

Data Shapley: Equitable Valuation of Data for Machine Learning

Code for implementation of "Data Shapley: Equitable Valuation of Data for Machine Learning".

Please cite the following work if you use this benchmark or the provided tools or implementations:

@inproceedings{ghorbani2019data,
  title={Data Shapley: Equitable Valuation of Data for Machine Learning},
  author={Ghorbani, Amirata and Zou, James},
  booktitle={International Conference on Machine Learning},
  pages={2242--2251},
  year={2019}
}

Prerequisites

  • Python, NumPy, Tensorflow 1.12, Scikit-learn, Matplotlib

Basic Usage

To divide value fairly between individual train data points/sources given the learning algorithm and a meausre of performance for the trained model (test accuracy, etc)

Authors

License

This project is licensed under the MIT License - see the LICENSE.md file for details

View on GitHub
GitHub Stars293
CategoryEducation
Updated1d ago
Forks71

Languages

Python

Security Score

95/100

Audited on Apr 6, 2026

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