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Bejeziešu tendenču rādītāju saskaņošana×Coarsened Exact Matching (CEM)×
NozareCēloņsakarību secināšanaCēloņsakarību secināšana
SaimeRegression modelRegression model
Izcelsmes gads20122011-2012
AutorsKaplan & Chen (2012); foundational PSM by Rosenbaum & Rubin (1983)Iacus, King, & Porro
TipsBayesian causal inference / matchingMatching / causal inference
PirmavotsKaplan, D., & Chen, J. (2012). A Two-Step Bayesian Approach for Propensity Score Analysis: Simulations and Case Study. Psychometrika, 77(3), 581-609. DOI ↗Iacus, S. M., King, G., & Porro, G. (2012). Causal Inference without Balance Checking: Coarsened Exact Matching. Political Analysis, 20(1), 1-24. DOI ↗
Citi nosaukumiBayesian PSM, BPSM, Bayesian matching estimator, Bayesian propensity weightingCEM, coarsened matching, monotonic imbalance bounding matching
Saistītās66
KopsavilkumsBayesian 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.Coarsened Exact Matching is a preprocessing method that achieves covariate balance by temporarily coarsening continuous variables into bins, exactly matching treated and control units within those bins, and then discarding all unmatched units. Introduced by Iacus, King, and Porro (2011, 2012), it bounds imbalance on each covariate independently, yielding a matched sample on which any estimator can be applied without relying on a propensity score model.
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ScholarGateSalīdzināt metodes: Bayesian Propensity Score Matching · Coarsened Exact Matching. Izgūts 2026-06-19 no https://scholargate.app/lv/compare