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Procjenitelj podudaranja za heterogeni učinak tretmana×Procjenitelj podudaranja×
PodručjeUzročno zaključivanjeUzročno zaključivanje
ObiteljRegression modelRegression model
Godina nastanka1997-20061973
TvoracHeckman, Ichimura & Todd; Abadie & ImbensRubin (1973); large-sample theory by Abadie & Imbens (2006)
VrstaCausal inference / nonparametric matchingNonparametric matching / causal inference
Temeljni izvorHeckman, J. J., Ichimura, H., & Todd, P. E. (1997). Matching as an Econometric Evaluation Estimator: Evidence from Evaluating a Job Training Programme. Review of Economic Studies, 64(4), 605-654. DOI ↗Abadie, A., & Imbens, G. W. (2006). Large Sample Properties of Matching Estimators for Average Treatment Effects. Econometrica, 74(1), 235-267. DOI ↗
Drugi naziviHTE matching, subgroup matching estimator, conditional matching estimator, CATE matchingnearest-neighbor matching, NNM, matching on covariates, covariate matching
Srodne66
SažetakThe Heterogeneous Treatment Effect (HTE) Matching Estimator extends standard matching to recover how treatment impacts differ across subgroups or covariate values. Rather than reporting a single average treatment effect, it pairs treated and control units on observed characteristics and then estimates the conditional average treatment effect (CATE) as a function of those characteristics — revealing who benefits most, least, or not at all.The matching estimator identifies the causal effect of a treatment by pairing each treated unit with one or more untreated units that have similar observed characteristics. Formalised by Rubin (1973) and given rigorous large-sample theory by Abadie and Imbens (2006), it constructs a credible control group from observational data without requiring a parametric model for the outcome.
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ScholarGateUsporedite metode: Heterogeneous Treatment Effect Matching Estimator · Matching Estimator. Preuzeto 2026-06-19 s https://scholargate.app/hr/compare