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PMID: 16217841 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Dichotomizing continuous predictors in multiple regression: a bad idea.

Statistics in medicine ·Vol. 25 ·No. 1 ·2006-01-15 ·Pages 127-41

Royston P, Altman DG, Sauerbrei W

Abstract

In medical research, continuous variables are often converted into categorical variables by grouping values into two or more categories. We consider in detail issues pertaining to creating just two groups, a common approach in clinical research. We argue that the simplicity achieved is gained at a cost; dichotomization may create rather than avoid problems, notably a considerable loss of power and residual confounding. In addition, the use of a data-derived 'optimal' cutpoint leads to serious bias. We illustrate the impact of dichotomization of continuous predictor variables using as a detailed case study a randomized trial in primary biliary cirrhosis. Dichotomization of continuous data is unnecessary for statistical analysis and in particular should not be applied to explanatory variables in regression models.

MeSH Terms
Age Factors Albumins/analysis Antimetabolites/pharmacology Azathioprine/pharmacology Bilirubin/analysis Cholestasis/drug therapy Data Interpretation, Statistical Humans Liver Cirrhosis, Biliary/drug therapy Randomized Controlled Trials as Topic/methods Regression Analysis
Chemicals
Albumins Antimetabolites Azathioprine Bilirubin
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Royston Patrick
MRC Clinical Trials Unit, 222 Euston Road, London NW1 2DA, UK. [email protected]
Altman Douglas G
Sauerbrei Willi
Article Info
Journal
Statistics in medicine
Abbr.
Stat Med
ISSN
0277-6715
Published
2006-01-15
Pages
127-41
Language
English
Region
England
NLM ID
8215016
Subset
IM
Grants
Medical Research Council · MC_U122861386 · United Kingdom
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