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Impact of communities health and emotional-related factors on smoking use: comparison of joint modeling of mean and dispersion and Bayes’ hierarchical models on add health survey

机译:社区健康和与情感有关的因素对吸烟的影响:均值和分散联合模型与贝叶斯分层模型在新增健康调查中的比较

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摘要

BackgroundThe analysis of correlated binary data is commonly addressed through the use of conditional models with random effects included in the systematic component as opposed to generalized estimating equations (GEE) models that addressed the random component. Since the joint distribution of the observations is usually unknown, the conditional distribution is a natural approach. Our objective was to compare the fit of different binary models for correlated data in Tabaco use. We advocate that the joint modeling of the mean and dispersion may be at times just as adequate. We assessed the ability of these models to account for the intraclass correlation. In so doing, we concentrated on fitting logistic regression models to address smoking behaviors.
机译:背景技术通常通过使用条件模型来解决相关二进制数据的分析,该条件模型具有包含在系统组件中的随机效应,这与解决随机分量的广义估计方程(GEE)模型相反。由于观测值的联合分布通常是未知的,因此条件分布是自然的方法。我们的目标是比较Tabaco中使用的相关数据的不同二进制模型的拟合度。我们主张均值和分散的联合建模有时可能是足够的。我们评估了这些模型解释类内相关性的能力。在此过程中,我们专注于拟合逻辑回归模型以解决吸烟行为。

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