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Home / Proceedings / Proceedings of the AAAI Conference on Artificial Intelligence, 36 / No. 6: AAAI-22 Technical Tracks 6

Achieving Counterfactual Fairness for Causal Bandit

February 1, 2023

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Authors

Wen Huang

University of Arkansas


Lu Zhang

University of Arkansas


Xintao Wu

University of Arkansas


DOI:

10.1609/aaai.v36i6.20653


Abstract:

In online recommendation, customers arrive in a sequential and stochastic manner from an underlying distribution and the online decision model recommends a chosen item for each arriving individual based on some strategy. We study how to recommend an item at each step to maximize the expected reward while achieving user-side fairness for customers, i.e., customers who share similar profiles will receive a similar reward regardless of their sensitive attributes and items being recommended. By incorporating causal inference into bandits and adopting soft intervention to model the arm selection strategy, we first propose the d-separation based UCB algorithm (D-UCB) to explore the utilization of the d-separation set in reducing the amount of exploration needed to achieve low cumulative regret. Based on that, we then propose the fair causal bandit (F-UCB) for achieving the counterfactual individual fairness. Both theoretical analysis and empirical evaluation demonstrate effectiveness of our algorithms.

Topics: AAAI

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HOW TO CITE:

Wen Huang||Lu Zhang||Xintao Wu Achieving Counterfactual Fairness for Causal Bandit Proceedings of the AAAI Conference on Artificial Intelligence (2022) 6952-6959.

Wen Huang||Lu Zhang||Xintao Wu Achieving Counterfactual Fairness for Causal Bandit AAAI 2022, 6952-6959.

Wen Huang||Lu Zhang||Xintao Wu (2022). Achieving Counterfactual Fairness for Causal Bandit. Proceedings of the AAAI Conference on Artificial Intelligence, 6952-6959.

Wen Huang||Lu Zhang||Xintao Wu. Achieving Counterfactual Fairness for Causal Bandit. Proceedings of the AAAI Conference on Artificial Intelligence 2022 p.6952-6959.

Wen Huang||Lu Zhang||Xintao Wu. 2022. Achieving Counterfactual Fairness for Causal Bandit. "Proceedings of the AAAI Conference on Artificial Intelligence". 6952-6959.

Wen Huang||Lu Zhang||Xintao Wu. (2022) "Achieving Counterfactual Fairness for Causal Bandit", Proceedings of the AAAI Conference on Artificial Intelligence, p.6952-6959

Wen Huang||Lu Zhang||Xintao Wu, "Achieving Counterfactual Fairness for Causal Bandit", AAAI, p.6952-6959, 2022.

Wen Huang||Lu Zhang||Xintao Wu. "Achieving Counterfactual Fairness for Causal Bandit". Proceedings of the AAAI Conference on Artificial Intelligence, 2022, p.6952-6959.

Wen Huang||Lu Zhang||Xintao Wu. "Achieving Counterfactual Fairness for Causal Bandit". Proceedings of the AAAI Conference on Artificial Intelligence, (2022): 6952-6959.

Wen Huang||Lu Zhang||Xintao Wu. Achieving Counterfactual Fairness for Causal Bandit. AAAI[Internet]. 2022[cited 2023]; 6952-6959.


ISSN: 2374-3468


Published by AAAI Press, Palo Alto, California USA
Copyright 2022, Association for the Advancement of
Artificial Intelligence 1900 Embarcadero Road, Suite
101, Palo Alto, California 94303 All Rights Reserved

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