Literature DB >> 9839350

The effects of measurement error in response variables and tests of association of explanatory variables in change models.

N D Yanez1, R A Kronmal, L R Shemanski.   

Abstract

Biomedical studies often measure variables with error. Examples in the literature include investigation of the association between the change in some outcome variable (blood pressure, cholesterol level etc.) and a set of explanatory variables (age, smoking status etc.). Typically, one fits linear regression models to investigate such associations. With the outcome variable measured with error, a problem occurs when we include the baseline value of the outcome variable as a covariate. In such instances, one can find a relationship between the observed change in the outcome and the explanatory variables even when there is no association between these variables and the true change in the outcome variable. We present a simple method of adjusting for a common measurement error bias that tends to be overlooked in the modelling of associations with change. Additional information (for example, replicates, instrumental variables) is needed to estimate the variance of the measurement error to perform this bias correction.

Entities:  

Mesh:

Year:  1998        PMID: 9839350     DOI: 10.1002/(sici)1097-0258(19981130)17:22<2597::aid-sim940>3.0.co;2-g

Source DB:  PubMed          Journal:  Stat Med        ISSN: 0277-6715            Impact factor:   2.373


  25 in total

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2.  Improper adjustment for baseline in genetic association studies of change in phenotype.

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3.  Problems in using incidence to analyze risk factors in follow-up studies.

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5.  Sociodemographic correlates of change in leukocyte telomere length during mid- to late-life: The Multi-Ethnic Study of Atherosclerosis.

Authors:  Belinda L Needham; Xu Wang; Judith E Carroll; Sharrelle Barber; Brisa N Sánchez; Teresa E Seeman; Ana V Diez Roux
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Review 6.  Methodological challenges in causal research on racial and ethnic patterns of cognitive trajectories: measurement, selection, and bias.

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7.  Bayesian Approach for Addressing Differential Covariate Measurement Error in Propensity Score Methods.

Authors:  Hwanhee Hong; Kara E Rudolph; Elizabeth A Stuart
Journal:  Psychometrika       Date:  2016-10-13       Impact factor: 2.500

8.  The genetics of rheumatoid arthritis: new insights and implications.

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Journal:  JAMA       Date:  2015-04-28       Impact factor: 56.272

9.  Pulse wave velocity is an independent predictor of the longitudinal increase in systolic blood pressure and of incident hypertension in the Baltimore Longitudinal Study of Aging.

Authors:  Samer S Najjar; Angelo Scuteri; Veena Shetty; Jeanette G Wright; Denis C Muller; Jerome L Fleg; Harold P Spurgeon; Luigi Ferrucci; Edward G Lakatta
Journal:  J Am Coll Cardiol       Date:  2008-04-08       Impact factor: 24.094

10.  Ambient air pollution and the progression of atherosclerosis in adults.

Authors:  Nino Künzli; Michael Jerrett; Raquel Garcia-Esteban; Xavier Basagaña; Bernardo Beckermann; Frank Gilliland; Merce Medina; John Peters; Howard N Hodis; Wendy J Mack
Journal:  PLoS One       Date:  2010-02-08       Impact factor: 3.240

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