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Heterogeneous Treatment Effect Regression Discontinuity Design×Lokalny Średni Efekt Oddziaływania (LATE / CACE)×
DziedzinaWnioskowanie przyczynoweWnioskowanie przyczynowe
RodzinaRegression modelRegression model
Rok powstania20151994
TwórcaDong & Lewbel (2015); Chiang, Hsu & Sasaki (2019)Imbens & Angrist (1994); Angrist, Imbens & Rubin (1996)
TypQuasi-experimental causal inference with effect heterogeneityInstrumental-variable causal estimand
Źródło pierwotneDong, Y., & Lewbel, A. (2015). Identifying the Effect of Changing the Policy Threshold in Regression Discontinuity Models. Review of Economics and Statistics, 97(5), 1081-1092. DOI ↗Imbens, G. W., & Angrist, J. D. (1994). Identification and Estimation of Local Average Treatment Effects. Econometrica, 62(2), 467-475. DOI ↗
Inne nazwyHTE-RDD, heterogeneous RDD, subgroup RDD, effect heterogeneity RDLATE, CACE, complier average causal effect, Yerel Ortalama Tedavi Etkisi (LATE / CACE)
Pokrewne45
PodsumowanieHeterogeneous Treatment Effect RDD extends the classic regression discontinuity framework to detect and estimate how the causal effect of crossing an assignment cutoff varies across subgroups or along covariates. Rather than reporting a single local average treatment effect at the threshold, HTE-RDD maps how treatment impact differs by individual characteristics, enabling richer policy conclusions about who benefits most or least from a threshold-based intervention.The Local Average Treatment Effect is an instrumental-variable estimand, introduced by Imbens and Angrist (1994) and formalised with Rubin (1996), that recovers the average treatment effect for the subpopulation of compliers — units whose treatment status is actually moved by the instrument. It is closely tied to compliance analysis.
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ScholarGatePorównaj metody: Heterogeneous Treatment Effect Regression Discontinuity Design · Local Average Treatment Effect. Pobrano 2026-06-19 z https://scholargate.app/pl/compare