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Pondération robuste par score de propension×Analyse de sensibilité pour la causalité×
DomaineInférence causaleInférence causale
FamilleRegression modelRegression model
Année d'origine1994–20191983–2002
Auteur d'origineRobins, Rotnitzky, & Zhao (foundational augmented IPW); Zhao, Small, & Bhattacharya (sensitivity-robust IPW)Paul R. Rosenbaum (hidden-bias framework); extended by Cinelli & Hazlett (omitted-variable approach)
TypeRobust causal weighting estimatorDiagnostic / robustness check
Source fondatriceRobins, J. M., Rotnitzky, A., & Zhao, L. P. (1994). Estimation of regression coefficients when some regressors are not always observed. Journal of the American Statistical Association, 89(427), 846-866. DOI ↗Rosenbaum, P. R. (2002). Observational Studies (2nd ed.). Springer. ISBN: 978-0387989679
Aliasrobust PSW, robust IPW, robustness-augmented propensity score weighting, misspecification-robust weightingsensitivity analysis, hidden-bias sensitivity analysis, Rosenbaum sensitivity analysis, omitted-variable sensitivity
Apparentées64
RésuméRobust Propensity Score Weighting extends standard inverse probability weighting by incorporating safeguards against misspecification of the propensity score model and extreme weights. It combines techniques such as weight trimming, overlap weighting, or augmented outcome models to ensure that causal effect estimates remain reliable even when the propensity score model is imperfectly specified.Sensitivity analysis for causality assesses how robust a causal conclusion is to unobserved confounding. Rather than assuming all confounders are controlled, it asks: how strong would an unmeasured variable need to be to overturn the estimated effect? It is an indispensable robustness check after any quasi-experimental or observational causal analysis.
ScholarGateJeu de données
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  3. PUBLISHED

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ScholarGateComparer des méthodes: Robust Propensity Score Weighting · Sensitivity Analysis for Causality. Consulté le 2026-06-18 sur https://scholargate.app/fr/compare