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A Stable and Efficient Covariate-Balancing Estimator for Causal Survival Effects

1 October 2023
Khiem Pham
David A. Hirshberg
Phuong-Mai Huynh-Pham
Michele Santacatterina
Ser-Nam Lim
Ramin Zabih
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Abstract

We propose an empirically stable and asymptotically efficient covariate-balancing approach to the problem of estimating survival causal effects in data with conditionally-independent censoring. This addresses a challenge often encountered in state-of-the-art nonparametric methods: the use of inverses of small estimated probabilities and the resulting amplification of estimation error. We validate our theoretical results in experiments on synthetic and semi-synthetic data.

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