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PMID: 15570623 Published · ppublish English Journal Article

Adjusting for partially missing baseline measurements in randomized trials.

Statistics in medicine ·Vol. 24 ·No. 7 ·2005-04-15 ·Pages 993-1007

White IR, Thompson SG

Abstract

Adjustment for baseline variables in a randomized trial can increase power to detect a treatment effect. However, when baseline data are partly missing, analysis of complete cases is inefficient. We consider various possible improvements in the case of normally distributed baseline and outcome variables. Joint modelling of baseline and outcome is the most efficient method. Mean imputation is an excellent alternative, subject to three conditions. Firstly, if baseline and outcome are correlated more than about 0.6 then weighting should be used to allow for the greater information from complete cases. Secondly, imputation should be carried out in a deterministic way, using other baseline variables if possible, but not using randomized arm or outcome. Thirdly, if baselines are not missing completely at random, then a dummy variable for missingness should be included as a covariate (the missing indicator method). The methods are illustrated in a randomized trial in community psychiatry.

MeSH Terms
Data Interpretation, Statistical Humans Models, Statistical Patient Satisfaction Psychotic Disorders/therapy Randomized Controlled Trials as Topic/methods Sample Size
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
White Ian R
MRC Biostatistics Unit, Institute of Public Health, Robinson Way, Cambridge CB2 2SR, U.K. [email protected]
Thompson Simon G
Article Info
Journal
Statistics in medicine
Abbr.
Stat Med
ISSN
0277-6715
Published
2005-04-15
Pages
993-1007
Language
English
Region
England
NLM ID
8215016
Subset
IM
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