METHODS FOR EPIDEMIOLOGIC ANALYSES OF MULTIPLE EXPOSURES - A REVIEW AND COMPARATIVE-STUDY OF MAXIMUM-LIKELIHOOD, PRELIMINARY-TESTING, AND EMPIRICAL-BAYES REGRESSION

被引:118
作者
GREENLAND, S
机构
[1] Department of Epidemiology, Ucla School of Public Health, Los Angeles, California
关键词
D O I
10.1002/sim.4780120802
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Many epidemiologic investigations are designed to study the effects of multiple exposures. Most of these studies are analysed either by fitting a risk-regression model with all exposures forced in the model, or by using a preliminary-testing algorithm, such as stepwise regression, to produce a smaller model. Research indicates that hierarchical modelling methods can outperform these conventional approaches. I here review these methods and compare two hierarchical methods, empirical-Bayes regression and a variant I call 'semi-Bayes' regression, to full-model maximum likelihood and to model reduction by preliminary testing. I then present a simulation study of logistic-regression analysis of weak exposure effects to illustrate the type of accuracy gains one may expect from hierarchical methods. Finally, I compare the performance of the methods in a problem of predicting neonatal mortality rates. Based on the literature to date, I suggest that hierarchical methods should become part of the standard approaches to multiple-exposure studies.
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页码:717 / 736
页数:20
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