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Fairness Research For Machine Learning Should Integrate Societal Considerations

2025-06-14 · Yijun Bian, Lei You

Enhancing fairness in machine learning (ML) systems is increasingly important nowadays. While current research focuses on assistant tools for ML pipelines to promote fairness within them, we argue that: 1) The significance of properly defined fairness measures remains underestimated; and 2) Fairness research in ML should integrate societal considerations. The reasons include that detecting discrimination is critical due to the widespread deployment of ML systems and that human-AI feedback loops amplify biases, even when only small social and political biases persist.

📄 PDF Abstract BibTeX arXiv:2506.12556

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