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Estimátor shody pro heterogenní léčebný efekt×Vyvažování entropie×
OborKauzální inferenceKauzální inference
RodinaRegression modelRegression model
Rok vzniku1997-20062012
TvůrceHeckman, Ichimura & Todd; Abadie & ImbensJens Hainmueller
TypCausal inference / nonparametric matchingCovariate-balancing reweighting
Původní zdrojHeckman, 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 ↗Hainmueller, J. (2012). Entropy balancing for causal effects: A multivariate reweighting method to produce balanced samples in observational studies. Political Analysis, 20(1), 25-46. DOI ↗
Další názvyHTE matching, subgroup matching estimator, conditional matching estimator, CATE matchingEB, entropy reweighting, covariate balancing via entropy, Hainmueller balancing
Příbuzné66
ShrnutíThe 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.Entropy balancing is a preprocessing method for causal inference that assigns weights to control-group units so that the reweighted control sample matches the treatment group exactly on a chosen set of covariate moments (means, variances, skewness). Introduced by Hainmueller (2012), it replaces trial-and-error propensity-score trimming with a constrained maximum-entropy optimisation that achieves balance in a single step.
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ScholarGatePorovnat metody: Heterogeneous Treatment Effect Matching Estimator · Entropy Balancing. Získáno 2026-06-19 z https://scholargate.app/cs/compare