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| Ανάλυση Ευαισθησίας Ετερογενών Επιδράσεων Θεραπείας για την Αιτιότητα× | Εκτίμηση Διπλής Ευστάθειας (AIPW)× | |
|---|---|---|
| Πεδίο | Αιτιακή Συμπερασματολογία | Αιτιακή Συμπερασματολογία |
| Οικογένεια | Regression model | Regression model |
| Έτος προέλευσης≠ | 2000s–2010s | 2005 |
| Δημιουργός≠ | Rosenbaum (sensitivity analysis framework); extended to heterogeneous effects by Crump, Imbens, and others | Robins & Rotnitzky; Bang & Robins |
| Τύπος≠ | Robustness / sensitivity check | Semiparametric causal estimator |
| Θεμελιώδης πηγή≠ | Rosenbaum, P. R. (2002). Observational Studies (2nd ed.). Springer. ISBN: 978-0387989679 | Robins, J. M. & Rotnitzky, A. (1995). Semiparametric Efficiency in Multivariate Regression Models with Missing Data. Journal of the American Statistical Association, 90(429), 122-129. DOI ↗ |
| Εναλλακτικές ονομασίες | HTE sensitivity analysis, heterogeneous-effects sensitivity analysis, sensitivity analysis with effect heterogeneity, HTE robustness analysis | AIPW, augmented inverse probability weighting, doubly robust estimator, Çift Gürbüz Kestirici (Augmented IPW / AIPW) |
| Συναφείς | 5 | 5 |
| Σύνοψη≠ | Heterogeneous Treatment Effect Sensitivity Analysis examines how robust subgroup-specific causal estimates are to unobserved confounding. Rather than testing a single average treatment effect, it asks whether the estimated variation in treatment effects across units or subgroups could be explained away by hidden bias, and at what level of hidden bias the causal conclusions for each subgroup would break down. | Doubly Robust Estimation, also called Augmented Inverse Probability Weighting (AIPW), is a semiparametric method for estimating causal treatment effects that combines an outcome regression model with a propensity (treatment) model. Developed in the work of Robins & Rotnitzky (1995) and Bang & Robins (2005), it stays consistent as long as at least one of the two models is correctly specified. |
| ScholarGateΣύνολο δεδομένων ↗ |
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