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Vícperiodální dvojitě robustní odhad×Dynamická metoda rozdílu rozdílů (Dynamic Difference-in-Differences)×
OborKauzální inferenceKauzální inference
RodinaRegression modelRegression model
Rok vzniku1994-20212021
TvůrceRobins, Rotnitzky, and Zhao; extended by Bang & Robins (2005) and Callaway & Sant'Anna (2021)Callaway & Sant'Anna; Sun & Abraham
TypSemiparametric causal estimatorCausal inference / quasi-experimental
Původní zdrojBang, H., & Robins, J. M. (2005). Doubly robust estimation in missing data and causal inference models. Biometrics, 61(4), 962-973. DOI ↗Callaway, B., & Sant'Anna, P. H. C. (2021). Difference-in-differences with multiple time periods. Journal of Econometrics, 225(2), 200-230. DOI ↗
Další názvylongitudinal DR estimation, multi-period DR, multi-wave doubly robust, sequential doubly robust estimationDynamic DiD, Staggered DiD, Event-time DiD, Heterogeneous-timing DiD
Příbuzné64
ShrnutíMulti-period doubly robust (DR) estimation extends the classic doubly robust approach to longitudinal settings with multiple treatment periods and time points. It combines an outcome regression model and a propensity score model for each period, retaining consistency of the causal effect estimate as long as at least one of the two models is correctly specified at every time point.Dynamic Difference-in-Differences extends the classic DiD framework to settings where units adopt treatment at different times. Rather than collapsing all variation into a single 2x2 comparison, it estimates group-time average treatment effects for each adoption cohort at each calendar period, then aggregates them into interpretable summaries of the causal effect over event time.
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ScholarGatePorovnat metody: Multi-period Doubly Robust Estimation · Dynamic Difference-in-Differences. Získáno 2026-06-15 z https://scholargate.app/cs/compare