Papers › Federated Estimation of Causal Effects from Observational Data

Federated Estimation of Causal Effects from Observational Data

31 May 2021arXiv:2106.00456archive 2025-07-28

Thanh Vinh Vo, Trong Nghia Hoang, Young Lee, Tze-Yun Leong

Many modern applications collect data that comes in federated spirit, with data kept locally and undisclosed. Till date, most insight into the causal inference requires data to be stored in a central repository. We present a novel framework for causal inference with federated data sources. We assess and integrate local causal effects from different private data sources without centralizing them. Then, the treatment effects on subjects from observational data using a non-parametric reformulation of the classical potential outcomes framework is estimated. We model the potential outcomes as a random function distributed by Gaussian processes, whose defining parameters can be efficiently learned from multiple data sources, respecting privacy constraints. We demonstrate the promise and efficiency of the proposed approach through a set of simulated and real-world benchmark examples.

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BNSE GAMES-UChile/mogptk/mogptk/init.py community (archive-listed) unverified MIT (permissive) · 0848d8afcc81c406 · report
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LoadFunction GAMES-UChile/mogptk/mogptk/data.py community (archive-listed) unverified MIT (permissive) · 99c8479d5eae7759 · report
LoadModel GAMES-UChile/mogptk/mogptk/model.py community (archive-listed) unverified MIT (permissive) · be41f5a4c4dab0a1 · report
LoadSplitData GAMES-UChile/mogptk/mogptk/data.py community (archive-listed) unverified MIT (permissive) · 147b30e049914680 · report
init_inducing_points GAMES-UChile/mogptk/mogptk/gpr/model.py community (archive-listed) unverified MIT (permissive) · 1617609b7ed35f7a · report

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Causal InferenceGaussian Processes

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