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PMID: 7742402 Published · ppublish English Journal Article

When measurement errors correlate with truth: surprising effects of nondifferential misclassification.

Epidemiology (Cambridge, Mass.) ·Vol. 6 ·No. 2 ·1995-03-00 ·Pages 157-61

Wacholder S

Abstract

Most of the literature on the effect of nondifferential misclassification and errors in variables either addresses binary exposure variables or discusses continuous variables in the classical error model, where the error is assumed to be uncorrelated with the true value. In both of these situations, an imperfectly measured exposure always attenuates the relation, at least in the univariate setting. Furthermore, measuring a confounder with error independent of the exposure, even while measuring the exposure of interest perfectly, leads to partial control of the confounding. For many variables measured in epidemiology, particularly those based on self-report, however, errors are often correlated with the true value, and these rules may not apply. Epidemiologists need to be wary of deviations from the classical error model, since poor measurement might occasionally explain a positive finding even when the error does not differ by disease status.

MeSH Terms
Bias Biometry Confounding Factors, Epidemiologic Environmental Exposure Epidemiologic Methods Humans Models, Statistical
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Wacholder S
Biostatistics Branch, National Cancer Institute, Rockville, MD 20852, USA.
Article Info
Journal
Epidemiology (Cambridge, Mass.)
Abbr.
Epidemiology
ISSN
1044-3983
Published
1995-03-00
Pages
157-61
Language
English
Region
United States
NLM ID
9009644
Subset
IM
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