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Coarsened Exact Matching (CEM)×Aproksimēta novērtēšana (PSW / IPW)×
NozareCēloņsakarību secināšanaCēloņsakarību secināšana
SaimeRegression modelRegression model
Izcelsmes gads2011-20121983 (propensity score); 2003 (efficient IPW estimator)
AutorsIacus, King, & PorroRosenbaum & Rubin (propensity score); Hirano, Imbens & Ridder (efficient weighting)
TipsMatching / causal inferenceCausal inference / reweighting
PirmavotsIacus, S. M., King, G., & Porro, G. (2012). Causal Inference without Balance Checking: Coarsened Exact Matching. Political Analysis, 20(1), 1-24. DOI ↗Rosenbaum, P. R., & Rubin, D. B. (1983). The central role of the propensity score in observational studies for causal effects. Biometrika, 70(1), 41-55. DOI ↗
Citi nosaukumiCEM, coarsened matching, monotonic imbalance bounding matchingPSW, inverse probability weighting, IPW, propensity-based weighting
Saistītās66
KopsavilkumsCoarsened 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.Propensity score weighting is a causal-inference method that reweights observations so that the covariate distributions of treated and untreated units look exchangeable, enabling unbiased estimation of average treatment effects from observational data. Each unit receives a weight that is the inverse of its probability of receiving the treatment it actually received — a strategy formalised by Rosenbaum and Rubin (1983) and given its efficient semiparametric form by Hirano, Imbens and Ridder (2003).
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ScholarGateSalīdzināt metodes: Coarsened Exact Matching · Propensity Score Weighting. Izgūts 2026-06-19 no https://scholargate.app/lv/compare