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Causal Knowledge as a Prerequisite for Confounding Evaluation: An Application to Birth Defects Epidemiology

American Journal of Epidemiology · 2002 · Vol. 155(2) · pp. 176–184
Miguel A. Hernán

Abstract

Common strategies to decide whether a variable is a confounder that should be adjusted for in the analysis rely mostly on statistical criteria. The authors present findings from the Slone Epidemiology Unit Birth Defects Study, 1992-1997, a case-control study on folic acid supplementation and risk of neural tube defects. When statistical strategies for confounding evaluation are used, the adjusted odds ratio is 0.80 (95% confidence interval: 0.62, 1.21). However, the consideration of a priori causal knowledge suggests that the crude odds ratio of 0.65 (95% confidence interval: 0.46, 0.94) should be used because the adjusted odds ratio is invalid. Causal diagrams are used to encode qualitative a priori subject matter knowledge.

Advanced Causal Inference TechniquesHealth Systems, Economic Evaluations, Quality of LifeFolate and B Vitamins ResearchConfoundingOdds ratioConfidence intervalEpidemiologyMedicineOddsCausality (physics)StatisticsMathematicsInternal medicine

MeSH terms

Epidemiologic MethodsFemaleFolic AcidHumansInfant, NewbornNeural Tube DefectsOntarioPregnancyMental RecallUnited StatesBiasCausalityConfounding Factors, Epidemiologic

Funding

  • Pfizer
  • National Institutes of Health
  • National Heart, Lung, and Blood Institute
  • National Institute of Child Health and Human Development
Citations
1,456
FWCI
21.27
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49
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References
Applied Regression Analysis and Other Multivariable Methods
Technometrics · 1989 · 8,348 citations
Modeling and variable selection in epidemiologic analysis.
American Journal of Public Health · 1989 · 2,216 citations
Causal diagrams for empirical research
Biometrika · 1995 · 2,285 citations
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