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Estimating causal effects from epidemiological data

Journal of Epidemiology & Community Health · 2006 · Vol. 60(7) · pp. 578–586
Miguel A. HernánJames M Robins

Abstract

In ideal randomised experiments, association is causation: association measures can be interpreted as effect measures because randomisation ensures that the exposed and the unexposed are exchangeable. On the other hand, in observational studies, association is not generally causation: association measures cannot be interpreted as effect measures because the exposed and the unexposed are not generally exchangeable. However, observational research is often the only alternative for causal inference. This article reviews a condition that permits the estimation of causal effects from observational data, and two methods -- standardisation and inverse probability weighting -- to estimate population causal effects under that condition. For simplicity, the main description is restricted to dichotomous variables and assumes that no random error attributable to sampling variability exists. The appendix provides a generalisation of inverse probability weighting.

Advanced Causal Inference TechniquesStatistical Methods and Bayesian InferenceStatistical Methods and InferenceObservational studyCausal inferenceCausationInverse probability weightingMedicineWeightingStatisticsInverse probabilityEconometricsCausality (physics)

MeSH terms

Data Interpretation, StatisticalHumansProbabilityResearch DesignEpidemiologic Research DesignCausalityConfounding Factors, EpidemiologicEffect Modifier, EpidemiologicEpidemiologic Studies
Citations
1,023
FWCI
13.55
field-weighted impact
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12
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99%
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References
Estimating causal effects of treatments in randomized and nonrandomized studies.
Journal of Educational Psychology · 1974 · 9,316 citations
A definition of causal effect for epidemiological research
Journal of Epidemiology & Community Health · 2004 · 466 citations
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Estimating causal effects from epidemiological data
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