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领域因果推断因果推断
方法族Regression modelRegression model
起源年份20212021-2023
提出者Cattaneo, Feng & Titiunik (2021); building on Abadie, Diamond & Hainmueller (2010)Callaway & Sant'Anna; Sun & Abraham; Roth et al. (synthesised 2021-2023)
类型Quasi-experimental causal inferenceCausal inference / panel regression
开创性文献Cattaneo, M. D., Feng, Y., & Titiunik, R. (2021). Prediction Intervals for Synthetic Control Methods. Journal of the American Statistical Association, 116(536), 1865-1880. DOI ↗Callaway, B., & Sant'Anna, P. H. C. (2021). Difference-in-differences with multiple time periods. Journal of Econometrics, 225(2), 200-230. DOI ↗
别名Robust SCM, Inference-robust synthetic control, Synthetic control with valid inference, SCM with prediction intervalsrobust DiD, heterogeneity-robust DiD, staggered DiD, disaggregated ATT DiD
相关55
摘要The robust synthetic control method extends the classic synthetic control estimator by providing statistically valid uncertainty quantification and inference. Developed by Cattaneo, Feng and Titiunik (2021), it addresses a core limitation of the original approach — the lack of formal prediction intervals — making causal conclusions more defensible when only a single treated unit is observed.Robust Difference-in-Differences is a family of modern DiD estimators designed to remain valid when treatment timing is staggered across units and treatment effects are heterogeneous over time or across groups. Classical two-way fixed-effects (TWFE) DiD can be severely biased in such settings; robust variants estimate group-time average treatment effects (ATTs) separately and then aggregate them in a theoretically sound way.
ScholarGate数据集
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  3. PUBLISHED

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ScholarGate方法对比: Robust Synthetic Control Method · Robust Difference-in-Differences. 于 2026-06-15 检索自 https://scholargate.app/zh/compare