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Pondération Inverse de Probabilité Robuste (PIP Robuste)×Modèle structurel marginal (MSM)×
DomaineInférence causaleInférence causale
FamilleRegression modelRegression model
Année d'origine2000-20042000
Auteur d'origineLunceford & Davidian (2004); Robins, Hernán & Brumback (2000)James M. Robins, Miguel A. Hernan, Babette Brumback
TypeCausal weighting estimatorCausal model / semiparametric weighting
Source fondatriceLunceford, 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 ↗Robins, J. M., Hernan, M. A., & Brumback, B. (2000). Marginal structural models and causal inference in epidemiology. Epidemiology, 11(5), 550-560. DOI ↗
AliasRobust IPW, Stabilized IPW, Trimmed IPW, Variance-robust IPWMSM, MSM-IPTW, marginal structural Cox model, weighted structural model
Apparentées55
RésuméRobust 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.A marginal structural model is a causal modeling framework designed to estimate the effect of a time-varying treatment in the presence of time-varying confounders that are themselves affected by prior treatment. By reweighting observations with inverse probability of treatment weights, MSMs create a pseudo-population in which confounding is eliminated, enabling unbiased estimation of causal treatment contrasts even when standard regression adjustments would fail.
ScholarGateJeu de données
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  1. v1
  2. 2 Sources
  3. PUBLISHED

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ScholarGateComparer des méthodes: Robust Inverse Probability Weighting · Marginal Structural Model. Consulté le 2026-06-18 sur https://scholargate.app/fr/compare