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An Exact and Robust Conformal Inference Method for Counterfactual and Synthetic Controls
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We introduce new inference procedures for counterfactual and synthetic control methods for policy evaluation. We recast the causal inference problem as a counterfactual prediction and a structural breaks testing problem. This allows us to exploit insights from conformal prediction and structural breaks testing to develop permutation inference procedures that accommodate modern high-dimensional estimators, are valid under weak and easy-to-verify conditions, and are provably robust against misspecification. Our methods work in conjunction with many different approaches for predicting counterfactual mean outcomes in the absence of the policy intervention. Examples include synthetic controls, difference-in-differences, factor and matrix completion models, and (fused) time series panel data models. Our approach demonstrates an excellent small-sample performance in simulations and is taken to a data application where we re-evaluate the consequences of decriminalizing indoor prostitution. Open-source software for implementing our conformal inference methods is available.
Forward citations
Cited by 2 Pith papers
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Correlated Synthetic Controls
Correlated Synthetic Controls, a weight-sharing synthetic control estimator for many treated units, is proposed and shown to have smaller estimation error than difference-in-differences under selection on unobservable...
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Compositional Synthetic Controls
For outcomes that are shares summing to one, the paper estimates counterfactuals as weighted geometric means of donor compositions in log-odds space, with weights fit before treatment.
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