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Bayesiskais marginālais strukturālais modelis×Bayesian Instrumental Variables (Bayesian IV)×
NozareCēloņsakarību secināšanaCēloņsakarību secināšana
SaimeRegression modelRegression model
Izcelsmes gads2015 (Bayesian extension); 2000 (MSM foundation)2003
AutorsSaarela, Stephens, Moodie & Klein (Bayesian extension); Robins, Hernan & Brumback (original MSM)Kleibergen & Zivot (2003); Lancaster (2004)
TipsCausal inference / Bayesian weighted regressionCausal inference / Bayesian estimation
PirmavotsSaarela, O., Stephens, D. A., Moodie, E. E. M., & Klein, M. B. (2015). On Bayesian estimation of marginal structural models. Biometrics, 71(2), 279-288. DOI ↗Kleibergen, F., & Zivot, E. (2003). Bayesian and classical approaches to instrumental variable regression. Journal of Econometrics, 114(1), 29-72. DOI ↗
Citi nosaukumiBayesian MSM, Bayesian MSM-IPW, Bayesian weighted structural model, Bayesian causal MSMBayesian IV, Bayesian 2SLS, Bayesian LIML, BayesIV
Saistītās66
KopsavilkumsBayesian Marginal Structural Model (Bayesian MSM) combines the causal identification power of inverse-probability-weighted marginal structural models with Bayesian posterior inference. Rather than relying on point estimates and asymptotic standard errors, it propagates uncertainty through a full posterior distribution over causal effect parameters, offering coherent uncertainty quantification for causal effects of time-varying treatments.Bayesian Instrumental Variables combines the instrumental variable strategy for addressing endogeneity with Bayesian posterior inference. Instead of relying on asymptotic sampling distributions, it places prior distributions over all structural parameters and recovers a full posterior distribution for the causal effect, providing probability statements about the parameter rather than p-values — especially valuable when instruments are weak or the sample is small.
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ScholarGateSalīdzināt metodes: Bayesian Marginal Structural Model · Bayesian Instrumental Variables. Izgūts 2026-06-17 no https://scholargate.app/lv/compare