A General Approach to Fairness with Optimal Transport
Silvia Chiappa, Ray Jiang, Tom Stepleton, Aldo Pacchiano, Heinrich Jiang, John Aslanides
Abstract
We propose a general approach to fairness based on transporting distributions corresponding to different sensitive attributes to a common distribution. We use optimal transport theory to derive target distributions and methods that allow us to achieve fairness with minimal changes to the unfair model. Our approach is applicable to both classification and regression problems, can enforce different notions of fairness, and enable us to achieve a Pareto-optimal trade-off between accuracy and fairness. We demonstrate that it outperforms previous approaches in several benchmark fairness datasets.
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Install the CLIlune papers fulltext bef8eabe-d218-4b3c-9d10-1d225420c0baCited by top-tier papers21
- Fair regression with Wasserstein barycentersEvgenii Chzhen, Christophe Denis, Mohamed Hebiri, Luca Oneto et al.NeurIPS 2020 · 148 citations
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- Optimal Transport of Classifiers to FairnessMaarten Buyl, Tijl De BieNeurIPS 2022 · 16 citations
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