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이질적 처치 효과 사건 연구 설계×동적 이중차분법 (Dynamic Difference-in-Differences)×
분야인과추론인과추론
계열Regression modelRegression model
기원 연도20212021
창시자Sun & Abraham (2021); Callaway & Sant'Anna (2021)Callaway & Sant'Anna; Sun & Abraham
유형Quasi-experimental causal inferenceCausal inference / quasi-experimental
원전Sun, L., & Abraham, S. (2021). Estimating dynamic treatment effects in event studies with heterogeneous treatment effects. Journal of Econometrics, 225(2), 175-199. DOI ↗Callaway, B., & Sant'Anna, P. H. C. (2021). Difference-in-differences with multiple time periods. Journal of Econometrics, 225(2), 200-230. DOI ↗
별칭HTE event study, heterogeneous effects event study, group-time ATT event study, dynamic HTE designDynamic DiD, Staggered DiD, Event-time DiD, Heterogeneous-timing DiD
관련34
요약Heterogeneous Treatment Effect Event Study Design is a causal-inference framework that uses event study regression to estimate how treatment effects vary across groups, cohorts, or time relative to a treatment event. Unlike classical two-way fixed-effects event studies — which assume a homogeneous effect — this approach explicitly models and recovers group-time average treatment effects (ATTs), addressing the contamination bias that arises when effects differ across treated units.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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ScholarGate방법 비교: Heterogeneous Treatment Effect Event Study Design · Dynamic Difference-in-Differences. 2026-06-17에 다음에서 검색함: https://scholargate.app/ko/compare