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Estimateur bayésien par appariement×Appariement Bayésien par Score de Propension×
DomaineInférence causaleInférence causale
FamilleRegression modelRegression model
Année d'origine1978–19982012
Auteur d'origineDonald B. Rubin (Bayesian causal framework); extended by Heckman, Ichimura & Todd (matching estimator formalization)Kaplan & Chen (2012); foundational PSM by Rosenbaum & Rubin (1983)
TypeBayesian causal inference / nonparametric matchingBayesian causal inference / matching
Source fondatriceRubin, D. B. (1978). Bayesian inference for causal effects: The role of randomization. The Annals of Statistics, 6(1), 34-58. DOI ↗Kaplan, D., & Chen, J. (2012). A Two-Step Bayesian Approach for Propensity Score Analysis: Simulations and Case Study. Psychometrika, 77(3), 581-609. DOI ↗
AliasBayesian matching, Bayesian nonparametric matching, Bayes-ATE matching, posterior matching estimatorBayesian PSM, BPSM, Bayesian matching estimator, Bayesian propensity weighting
Apparentées66
RésuméThe Bayesian Matching Estimator estimates average treatment effects in observational studies by combining classical nearest-neighbour or kernel matching with a Bayesian posterior over the treatment effect. It inherits matching's covariate-balancing logic while propagating uncertainty through a full posterior distribution rather than relying on asymptotic standard errors, yielding credible intervals that reflect both sampling variability and prior knowledge.Bayesian Propensity Score Matching (Bayesian PSM) extends classical propensity score matching by placing a prior distribution over the propensity model parameters and propagating posterior uncertainty through the matching and outcome stages. Introduced formally by Kaplan and Chen (2012), it offers a principled account of estimation uncertainty that frequentist matching commonly ignores, and allows incorporation of substantive prior knowledge about treatment selection.
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ScholarGateComparer des méthodes: Bayesian Matching Estimator · Bayesian Propensity Score Matching. Consulté le 2026-06-18 sur https://scholargate.app/fr/compare