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Robust Inverse Probability Weighting (Robust IPW)×Dopasowanie wyników skłonności×
DziedzinaWnioskowanie przyczynoweStatystyka w badaniach
RodzinaRegression modelProcess / pipeline
Rok powstania2000-20041983
TwórcaLunceford & Davidian (2004); Robins, Hernán & Brumback (2000)Paul Rosenbaum and Donald Rubin
TypCausal weighting estimatorMethod
Źródło pierwotneLunceford, J. K., & Davidian, M. (2004). Stratification and weighting via the propensity score in estimation of causal treatment effects: a comparative study. Statistics in Medicine, 23(19), 2937-2960. 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 ↗
Inne nazwyRobust IPW, Stabilized IPW, Trimmed IPW, Variance-robust IPWPSM, propensity score weighting, covariate balance
Pokrewne53
PodsumowanieRobust Inverse Probability Weighting is a causal inference estimator that reweights observed units by stabilized or trimmed propensity score weights, then applies sandwich or bootstrap variance estimation to guard against model misspecification, extreme weights, and inflated standard errors. It extends standard IPW to improve finite-sample performance and inferential reliability in observational studies.Propensity score matching (PSM) is a method for reducing confounding bias in observational studies by balancing baseline characteristics between treatment groups, simulating randomization. Developed by Rosenbaum and Rubin (1983), it estimates the probability of receiving treatment given observed covariates, then matches or weights treated and control individuals with similar treatment probabilities. Widely used in medicine, epidemiology, and policy evaluation when randomized trials are infeasible or unethical, enabling estimation of treatment effects while controlling for selection bias.
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ScholarGatePorównaj metody: Robust Inverse Probability Weighting · Propensity Score Matching. Pobrano 2026-06-18 z https://scholargate.app/pl/compare