[Using log-binomial model for estimating the prevalence ratio]

优势比 协变量 统计 逻辑回归 负二项分布 人口学 置信区间 二项回归 医学 可能性 数学 泊松分布 社会学
作者
Rong Ye,Yanhui Gao,Yi Yang,Yue Chen
出处
期刊:Chinese journal of epidemiology [Chinese Medical Association]
卷期号:31 (5): 576-578 被引量:7
标识
DOI:10.3760/cma.j.issn.0254-6450.2010.05.024
摘要

To estimate the prevalence ratios, using a log-binomial model with or without continuous covariates. Prevalence ratios for individuals' attitude towards smoking-ban legislation associated with smoking status, estimated by using a log-binomial model were compared with odds ratios estimated by logistic regression model. In the log-binomial modeling, maximum likelihood method was used when there were no continuous covariates and COPY approach was used if the model did not converge, for example due to the existence of continuous covariates. We examined the association between individuals' attitude towards smoking-ban legislation and smoking status in men and women. Prevalence ratio and odds ratio estimation provided similar results for the association in women since smoking was not common. In men however, the odds ratio estimates were markedly larger than the prevalence ratios due to a higher prevalence of outcome. The log-binomial model did not converge when age was included as a continuous covariate and COPY method was used to deal with the situation. All analysis was performed by SAS. Prevalence ratio seemed to better measure the association than odds ratio when prevalence is high. SAS programs were provided to calculate the prevalence ratios with or without continuous covariates in the log-binomial regression analysis.
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