Non-parametric Causal Inference in Dynamic Thresholding Designs

Fuente: arXiv
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Autori principali: Ghosh, Aditya, Wager, Stefan
Natura: Preprint
Pubblicazione: 2025
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author Ghosh, Aditya
Wager, Stefan
author_facet Ghosh, Aditya
Wager, Stefan
contents We consider causal inference in dynamic settings where treatment is assigned by thresholding a state variable that can change over time. There is a large literature on regression-discontinuity methods building on the fact that, in the static setting, treatment assignment via threshold crossing induces a quasi-experimental design that enables pragmatic causal inference. But dynamic settings involve challenges not present in the static setting, e.g., past treatments may affect current state and thus future treatments, and so existing regression-discontinuity methods do not apply. Here, we show that dynamic thresholding designs identify a marginal policy effect that nests the classical regression-discontinuity parameter in the static setting; and propose a tailored local linear regression estimator that is consistent for this marginal policy effect. We demonstrate our approach using an experiment that emulates real-world optimization of thresholds for continuous glucose monitoring using data generated from an FDA-approved simulator.
format Preprint
id arxiv_https___arxiv_org_abs_2512_15244
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Non-parametric Causal Inference in Dynamic Thresholding Designs
Ghosh, Aditya
Wager, Stefan
Methodology
Econometrics
We consider causal inference in dynamic settings where treatment is assigned by thresholding a state variable that can change over time. There is a large literature on regression-discontinuity methods building on the fact that, in the static setting, treatment assignment via threshold crossing induces a quasi-experimental design that enables pragmatic causal inference. But dynamic settings involve challenges not present in the static setting, e.g., past treatments may affect current state and thus future treatments, and so existing regression-discontinuity methods do not apply. Here, we show that dynamic thresholding designs identify a marginal policy effect that nests the classical regression-discontinuity parameter in the static setting; and propose a tailored local linear regression estimator that is consistent for this marginal policy effect. We demonstrate our approach using an experiment that emulates real-world optimization of thresholds for continuous glucose monitoring using data generated from an FDA-approved simulator.
title Non-parametric Causal Inference in Dynamic Thresholding Designs
topic Methodology
Econometrics
url https://arxiv.org/abs/2512.15244