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Conditions for valid estimation of causal effects on prevalence in cross-sectional and other studies.

Authors :
Flanders WD
Klein M
Mirabelli MC
Source :
Annals of epidemiology [Ann Epidemiol] 2016 Jun; Vol. 26 (6), pp. 389-394.e2. Date of Electronic Publication: 2016 May 03.
Publication Year :
2016

Abstract

Purpose: Causal effects in epidemiology are almost invariably studied by considering disease incidence even when prevalence data are used to estimate the causal effect. For example, if certain conditions are met, a prevalence odds ratio can provide a valid estimate of an incidence rate ratio. Our purpose and main result are conditions that assure causal effects on prevalence can be estimated in cross-sectional studies, even when the prevalence odds ratio does not estimate incidence.<br />Methods: Using a general causal effect definition in a multivariate counterfactual framework, we define causal contrasts that compare prevalences among survivors from a target population had all been exposed at baseline with that prevalence had all been unexposed. Although prevalence is a measure reflecting a moment in time, we consider the time sequence to study causal effects.<br />Results: Effects defined using a contrast of counterfactual prevalences can be estimated in an experiment and, with conditions provided, in cross-sectional studies. Proper interpretation of the effect includes recognition that the target is the baseline population, defined at the age or time of exposure.<br />Conclusions: Prevalences are widely reported, readily available measures for assessing disabilities and disease burden. Effects on prevalence are estimable in cross-sectional studies but only if appropriate conditions hold.<br /> (Copyright © 2016 Elsevier Inc. All rights reserved.)

Details

Language :
English
ISSN :
1873-2585
Volume :
26
Issue :
6
Database :
MEDLINE
Journal :
Annals of epidemiology
Publication Type :
Academic Journal
Accession number :
27287301
Full Text :
https://doi.org/10.1016/j.annepidem.2016.04.010