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PMID: 16172102 Published · ppublish English Journal Article

A method to automate probabilistic sensitivity analyses of misclassified binary variables.

International journal of epidemiology ·Vol. 34 ·No. 6 ·2005-12-00 ·Pages 1370-6

Fox MP, Lash TL, Greenland S

Abstract

Misclassification bias is present in most studies, yet uncertainty about its magnitude or direction is rarely quantified. The authors present a method for probabilistic sensitivity analysis to quantify likely effects of misclassification of a dichotomous outcome, exposure or covariate. This method involves reconstructing the data that would have been observed had the misclassified variable been correctly classified, given the sensitivity and specificity of classification. The accompanying SAS macro implements the method and allows users to specify ranges of sensitivity and specificity of misclassification parameters to yield simulation intervals that incorporate both systematic and random error. The authors illustrate the method and the accompanying SAS macro code by applying it to a study of the relation between occupational resin exposure and lung-cancer deaths. The authors compare the results using this method with the conventional result, which accounts for random error only, and with the original sensitivity analysis results. By accounting for plausible degrees of misclassification, investigators can present study results in a way that incorporates uncertainty about the bias due to misclassification, and so avoid misleadingly precise-looking results.

MeSH Terms
Bias Epidemiologic Methods Humans Lung Neoplasms/epidemiology,etiology Occupational Diseases/epidemiology,etiology Occupational Exposure/adverse effects Predictive Value of Tests Resins, Synthetic/adverse effects Sensitivity and Specificity
Chemicals
Resins, Synthetic
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Fox Matthew P
Department of International Health, Boston University School of Public Health, Boston, MA, USA. [email protected]
Lash Timothy L
Greenland Sander
Article Info
Journal
International journal of epidemiology
Abbr.
Int J Epidemiol
ISSN
0300-5771
Published
2005-12-00
Epub
2005-00-19
Pages
1370-6
Language
English
Region
England
NLM ID
7802871
Subset
IM
Corrections
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