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Równoważenie entropii wspomagane uczeniem maszynowym×Entropy Balancing×
DziedzinaWnioskowanie przyczynoweWnioskowanie przyczynowe
RodzinaRegression modelRegression model
Rok powstania2012-20172012
TwórcaHainmueller (2012) for entropy balancing; ML augmentation developed by Zhao & Percival (2017) and subsequent literatureJens Hainmueller
TypWeighting-based causal estimatorCovariate-balancing reweighting
Źródło pierwotneHainmueller, 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 ↗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 ↗
Inne nazwyML-EB, augmented entropy balancing, ML-augmented EB, doubly-robust entropy balancingEB, entropy reweighting, covariate balancing via entropy, Hainmueller balancing
Pokrewne46
PodsumowanieMachine learning-augmented entropy balancing (ML-EB) combines Hainmueller's entropy balancing reweighting scheme with a machine-learning outcome model to produce a doubly-robust causal estimator. By jointly optimising covariate balance weights and a flexible predicted-outcome adjustment, ML-EB delivers consistent treatment-effect estimates even when either the weighting or the outcome model is misspecified, and it handles high-dimensional covariate spaces that classical entropy balancing cannot easily balance.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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ScholarGatePorównaj metody: Machine Learning-Augmented Entropy Balancing · Entropy Balancing. Pobrano 2026-06-17 z https://scholargate.app/pl/compare