Training individually fair ML models with sensitive subspace robustness
Mikhail Yurochkin, Amanda Bower, Yuekai Sun
2020年份
123被引次数
41顶会引用
摘要
We propose an approach to training machine learning models that are fair in the sense that their performance is invariant under certain perturbations to the features. For example, the performance of a resume screening system should be invariant under changes to the name of the applicant. We formalize this intuitive notion of fairness by connecting it to the original notion of individual fairness put forth by Dwork et al and show that the proposed approach achieves this notion of fairness. We also demonstrate the effectiveness of the approach on two machine learning tasks that are susceptible to gender and racial biases.
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引用它的顶会 Paper41
- Exactly Computing the Local Lipschitz Constant of ReLU NetworksMatt Jordan, Alexandros G. DimakisNeurIPS 2020 · 被引用 156 次
- Post-processing for Individual FairnessFelix Petersen, Debarghya Mukherjee, Yuekai Sun, Mikhail YurochkinNeurIPS 2021 · 被引用 115 次
- Learning Certified Individually Fair RepresentationsAnian Ruoss, Mislav Balunovic, Marc Fischer, Martin T. VechevNeurIPS 2020 · 被引用 112 次
- Fast Model DeBias with Machine UnlearningRuizhe Chen, Jianfei Yang, Huimin Xiong, Jianhong Bai 等NeurIPS 2023 · 被引用 110 次
- Two Simple Ways to Learn Individual Fairness Metrics from DataDebarghya Mukherjee, Mikhail Yurochkin, Moulinath Banerjee, Yuekai SunICML 2020 · 被引用 109 次
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