Fairness in Supervised Learning: An Information Theoretic Approach (original) (raw)

One-vs.-One Mitigation of Intersectional Bias: A General Method for Extending Fairness-Aware Binary Classification

Yuri Nakao

Advances in Intelligent Systems and Computing

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One-vs.-One Mitigation of Intersectional Bias: A General Method to Extend Fairness-Aware Binary Classification

Yuri Nakao

2020

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Fairness Constraints: A Mechanism for Fair Classification

isabel valera

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Residual Unfairness in Fair Machine Learning from Prejudiced Data

Angela Zhou

2018

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A comparative study of fairness-enhancing interventions in machine learning

Evan Hamilton

Proceedings of the Conference on Fairness, Accountability, and Transparency - FAT* '19, 2019

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Addressing Fairness in Classification with a Model-Agnostic Multi-Objective Algorithm

Claudiu Musat

2020

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A survey on datasets for fairness-aware machine learning

Tai Le Quy

ArXiv, 2021

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FAIRNESS IN MACHINE LEARNING: STATUS, SOFTWARE, AND SOLUTIONS

Manish Nagireddy

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Algorithmic Fairness and Bias in Machine Learning Systems

Mr. Karun Sanjaya

E3S web of conferences, 2023

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A Neural Network Framework for Fair Classifier

Sujit Gujar

ArXiv, 2018

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On the Applicability of Machine Learning Fairness Notions

karima makhlouf

2021

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Classification with Fairness Constraints

Lingxiao Huang

Proceedings of the Conference on Fairness, Accountability, and Transparency, 2019

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Active Fairness in Algorithmic Decision Making

Alejandro Noriega

Proceedings of the 2019 AAAI/ACM Conference on AI, Ethics, and Society, 2019

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Beyond Incompatibility: Interpolation between Mutually Exclusive Fairness Criteria in Classification Problems

Philipp Hacker

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Measuring Fairness Under Unawareness of Sensitive Attributes: A Quantification-Based Approach

Alejandro Moreo

Journal of Artificial Intelligence Research

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Learning Fair Naive Bayes Classifiers by Discovering and Eliminating Discrimination Patterns

Golnoosh Farnadi

Proceedings of the AAAI Conference on Artificial Intelligence, 2020

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On the Applicability of ML Fairness Notions

karima makhlouf, Catuscia Palamidessi

2020

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There is no trade-off: enforcing fairness can improve accuracy

Debarghya Mukherjee

2020

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Two Simple Ways to Learn Individual Fairness Metrics from Data

Debarghya Mukherjee

ArXiv, 2020

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Evaluating Fairness Metrics in the Presence of Dataset Bias

Peter Cooman

arXiv (Cornell University), 2018

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Fairness Through Awareness

Ivy Zhou

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Fairness guarantee in multi-class classification

François Hu

HAL (Le Centre pour la Communication Scientifique Directe), 2021

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Normalise for Fairness: A Simple Normalisation Technique for Fairness in Regression Machine Learning Problems

Mostafa Mohamed

2022

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FAPFID: A Fairness-Aware Approach for Protected Features and Imbalanced Data

imen Megdiche

Lecture Notes in Computer Science, 2023

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Non-Discriminatory Machine Learning through Convex Fairness Criteria

Naman goel

Proceedings of the 2018 AAAI/ACM Conference on AI, Ethics, and Society, 2018

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A Methodology for Direct and Indirect Discrimination Prevention in Data Mining

EDUART HAJKO

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Benchmarking Four Approaches to Fairness-Aware Machine Learning

Evan Hamilton

2017

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A Maximal Correlation Approach to Imposing Fairness in Machine Learning

Yuheng Bu

ICASSP 2022 - 2022 IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP)

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A Ranking Approach to Fair Classification

isabel valera

ACM SIGCAS Conference on Computing and Sustainable Societies (COMPASS)

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Measuring Fairness under Unawareness via Quantification

Alejandro Moreo

ArXiv, 2021

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Non-empirical problems in fair machine learning

Teresa SCANTAMBURLO

Ethics and Information Technology

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Bayesian Fairness

Christos Dimitrakakis

Proceedings of the AAAI Conference on Artificial Intelligence

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Data augmentation for fairness-aware machine learning

Agata Gurzawska

2022 ACM Conference on Fairness, Accountability, and Transparency

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BaBE: Enhancing Fairness via Estimation of Latent Explaining Variables

Ruta Binkyte

arXiv (Cornell University), 2023

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A Possibility in Algorithmic Fairness: Calibrated Scores for Fair Classifications

Suhas Vijaykumar

arXiv: Learning, 2020

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