Literature DB >> 23857554

Multiple imputation for handling systematically missing confounders in meta-analysis of individual participant data.

Matthieu Resche-Rigon1, Ian R White, Jonathan W Bartlett, Sanne A E Peters, Simon G Thompson.   

Abstract

A variable is 'systematically missing' if it is missing for all individuals within particular studies in an individual participant data meta-analysis. When a systematically missing variable is a potential confounder in observational epidemiology, standard methods either fail to adjust the exposure-disease association for the potential confounder or exclude studies where it is missing. We propose a new approach to adjust for systematically missing confounders based on multiple imputation by chained equations. Systematically missing data are imputed via multilevel regression models that allow for heterogeneity between studies. A simulation study compares various choices of imputation model. An illustration is given using data from eight studies estimating the association between carotid intima media thickness and subsequent risk of cardiovascular events. Results are compared with standard methods and also with an extension of a published method that exploits the relationship between fully adjusted and partially adjusted estimated effects through a multivariate random effects meta-analysis model. We conclude that multiple imputation provides a practicable approach that can handle arbitrary patterns of systematic missingness. Bias is reduced by including sufficient between-study random effects in the imputation model.
Copyright © 2013 John Wiley & Sons, Ltd.

Entities:  

Keywords:  IPD meta-analysis; missing data; multilevel model; multiple imputation: chained equations

Mesh:

Year:  2013        PMID: 23857554     DOI: 10.1002/sim.5894

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


  39 in total

1.  Limitations in Using Multiple Imputation to Harmonize Individual Participant Data for Meta-Analysis.

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2.  A comparison of existing methods for multiple imputation in individual participant data meta-analysis.

Authors:  Deborah Kunkel; Eloise E Kaizar
Journal:  Stat Med       Date:  2017-07-10       Impact factor: 2.373

3.  Risk assessments and structured care interventions for prevention of foot ulceration in diabetes: development and validation of a prognostic model.

Authors:  Fay Crawford; Francesca M Chappell; James Lewsey; Richard Riley; Neil Hawkins; Donald Nicolson; Robert Heggie; Marie Smith; Margaret Horne; Aparna Amanna; Angela Martin; Saket Gupta; Karen Gray; David Weller; Julie Brittenden; Graham Leese
Journal:  Health Technol Assess       Date:  2020-11       Impact factor: 4.014

4.  Education and wealth inequalities in healthy ageing in eight harmonised cohorts in the ATHLOS consortium: a population-based study.

Authors:  Yu-Tzu Wu; Christina Daskalopoulou; Graciela Muniz Terrera; Albert Sanchez Niubo; Fernando Rodríguez-Artalejo; Jose Luis Ayuso-Mateos; Martin Bobak; Francisco Félix Caballero; Javier de la Fuente; Alejandro de la Torre-Luque; Esther García-Esquinas; Jose Maria Haro; Seppo Koskinen; Ilona Koupil; Matilde Leonardi; Andrzej Pajak; Demosthenes Panagiotakos; Denes Stefler; Beata Tobias-Adamczyk; Martin Prince; A Matthew Prina
Journal:  Lancet Public Health       Date:  2020-07

5.  Family Perspectives on Hospice Care Experiences of Patients with Cancer.

Authors:  Pallavi Kumar; Alexi A Wright; Laura A Hatfield; Jennifer S Temel; Nancy L Keating
Journal:  J Clin Oncol       Date:  2016-12-19       Impact factor: 44.544

6.  Multiple imputation for harmonizing longitudinal non-commensurate measures in individual participant data meta-analysis.

Authors:  Juned Siddique; Jerome P Reiter; Ahnalee Brincks; Robert D Gibbons; Catherine M Crespi; C Hendricks Brown
Journal:  Stat Med       Date:  2015-06-21       Impact factor: 2.373

7.  Can we spin straw into gold? An evaluation of immigrant legal status imputation approaches.

Authors:  Jennifer Van Hook; James D Bachmeier; Donna L Coffman; Ofer Harel
Journal:  Demography       Date:  2015-02

8.  A CD-based mapping method for combining multiple related parameters from heterogeneous intervention trials.

Authors:  Yang Jiao; Eun-Young Mun; Thomas A Trikalinos; Minge Xie
Journal:  Stat Interface       Date:  2020       Impact factor: 0.582

9.  Matching and Imputation Methods for Risk Adjustment in the Health Insurance Marketplaces.

Authors:  Sherri Rose; Julie Shi; Thomas G McGuire; Sharon-Lise T Normand
Journal:  Stat Biosci       Date:  2015-08-05

Review 10.  Analytic and Data Sharing Options in Real-World Multidatabase Studies of Comparative Effectiveness and Safety of Medical Products.

Authors:  Sengwee Toh
Journal:  Clin Pharmacol Ther       Date:  2020-01-24       Impact factor: 6.875

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