Standardized Interpretable Fairness Measures for Continuous Risk Scores
Ann-Kristin Becker, Oana Dumitrasc, Klaus Broelemann
2024年份
4被引次数
摘要
We propose a standardized version of fairness measures for continuous scores with a reasonable interpretation based on the Wasserstein distance. Our measures are easily computable and well suited for quantifying and interpreting the strength of group disparities as well as for comparing biases across different models, datasets, or time points. We derive a link between the different families of existing fairness measures for scores and show that the proposed standardized fairness measures outperform ROC-based fairness measures because they are more explicit and can quantify significant biases that ROC-based fairness measures miss.
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- Fair regression with Wasserstein barycentersEvgenii Chzhen, Christophe Denis, Mohamed Hebiri, Luca Oneto 等NeurIPS 2020 · 被引用 148 次
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- Evaluating Fairness Using Permutation TestsCyrus DiCiccio, Sriram Vasudevan, Kinjal Basu, Krishnaram Kenthapadi 等KDD 2020 · 被引用 2 次
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