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Counterfactually Fair Reinforcement Learning via Sequential Data Preprocessing
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When applied in healthcare, reinforcement learning (RL) seeks to dynamically match the right interventions to subjects to maximize population benefit. However, the learned policy may disproportionately allocate efficacious actions to one subpopulation, creating or exacerbating disparities in other socioeconomically-disadvantaged subgroups. These biases tend to occur in multi-stage decision making and can be self-perpetuating, which if unaccounted for could cause serious unintended consequences that limit access to care or treatment benefit. Counterfactual fairness (CF) offers a promising statistical tool grounded in causal inference to formulate and study fairness. In this paper, we propose a general framework for fair sequential decision making. We theoretically characterize the optimal CF policy and prove its stationarity, which greatly simplifies the search for optimal CF policies by leveraging existing RL algorithms. The theory also motivates a sequential data preprocessing algorithm to achieve CF decision making under an additive noise assumption. We prove and then validate our policy learning approach in controlling unfairness and attaining optimal value through simulations. Analysis of a digital health dataset designed to reduce opioid misuse shows that our proposal greatly enhances fair access to counseling.
Forward citations
Cited by 2 Pith papers
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A Distribution Mapping Approach to Counterfactually Fair Reinforcement Learning
A quantile-based data preprocessing method, CFSMDM, makes offline reinforcement learning approximately counterfactually fair under non-additive noise, with bounded suboptimality and unfairness.
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A Distributional Perspective on Pearl's Causal Hierarchy: From Marginal to Joint and Individualized Potential Outcomes
Causal estimands are classified by whether they depend only on marginal potential outcome distributions (intervention layer), joint or nested distributions (counterfactual layer), or individual-level outcomes.
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