Counterfactual Density Estimation using Kernel Stein Discrepancies
Diego Martinez-Taboada, Edward Kennedy
2024年份
8被引次数
2顶会引用
摘要
Causal effects are usually studied in terms of the means of counterfactual distributions, which may be insufficient in many scenarios. Given a class of densities known up to normalizing constants, we propose to model counterfactual distributions by minimizing kernel Stein discrepancies in a doubly robust manner. This enables the estimation of counterfactuals over large classes of distributions while exploiting the desired double robustness. We present a theoretical analysis of the proposed estimator, providing sufficient conditions for consistency and asymptotic normality, as well as an examination of its empirical performance.
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引用它的顶会 Paper2
- Quantifying Aleatoric Uncertainty of the Treatment Effect: A Novel Orthogonal LearnerValentyn Melnychuk, Stefan Feuerriegel, Mihaela van der SchaarNeurIPS 2024 · 被引用 13 次
- GDR-learners: Orthogonal Learning of Generative Models for Potential OutcomesValentyn Melnychuk, Stefan FeuerriegelICLR 2026 · 被引用 1 次
它引用的顶会 Paper3
- Kernel Stein Discrepancy DescentAnna Korba, Pierre-Cyril Aubin-Frankowski, Szymon Majewski, Pierre AblinICML 2021 · 被引用 64 次
- Conditional Distributional Treatment Effect with Kernel Conditional Mean Embeddings and U-Statistic RegressionJunhyung Park, Uri Shalit, Bernhard Schölkopf, Krikamol MuandetICML 2021 · 被引用 46 次
- An Efficient Doubly-Robust Test for the Kernel Treatment EffectDiego Martinez-Taboada, Aaditya Ramdas, Edward KennedyNeurIPS 2023 · 被引用 17 次
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