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Bayesiansk følsomhedsanalyse for kausalitet×Instrumentalvariabel (IV) Metoden til Kausal Inferens×
FagområdeKausal inferensSundhedsøkonomi
FamilieRegression modelProcess / pipeline
Oprindelsesår2000s–2010s1990s (modern applications)
OphavspersonMcCandless, Gustafson & Austin (2007); Gustafson (2015)Angrist & Pischke (applied econometrics); rooted in econometric theory
TypeBayesian causal sensitivity analysisMethod
Oprindelig kildeMcCandless, L. C., Gustafson, P., & Austin, P. C. (2007). Bayesian propensity score analysis for observational data. Statistics in Medicine, 26(8), 1704-1718. DOI ↗Angrist, J. D., & Pischke, J. S. (2009). Mostly Harmless Econometrics: An Empiricist's Companion. Princeton: Princeton University Press. link ↗
AliasserBayesian sensitivity analysis, Bayesian bias analysis, probabilistic sensitivity analysis for confounding, Bayesian unmeasured confounding analysisIV, two-stage least squares, TSLS, causal estimation
Relaterede63
ResuméBayesian sensitivity analysis for causality quantifies how much an unmeasured confounder would need to influence both treatment assignment and outcome to overturn a causal conclusion. Rather than testing a single worst-case scenario, it places prior distributions over the strength of hidden confounding, propagates uncertainty through a full Bayesian model, and reports a posterior distribution for the causal effect that honestly reflects what is and is not identified from observed data.Instrumental variables (IV) is an econometric method to estimate causal effects when treatment or exposure is not randomly assigned and confounding is severe or unmeasured. IV relies on a third variable (instrument) that influences treatment but does not directly affect the outcome, allowing researchers to isolate the causal effect from the noise of confounding. Developed extensively in econometrics (Angrist & Pischke, 1990s–2000s), IV methods are increasingly used in health economics and health services research to leverage natural experiments and policy changes.
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ScholarGateSammenlign metoder: Bayesian Sensitivity Analysis for Causality · Instrumental Variables in Health Research. Hentet 2026-06-17 fra https://scholargate.app/da/compare