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A guide for multilevel modeling of dyadic data with binary outcomes using SAS PROC NLMIXED

机译:使用SAS PROC NLMIXED对带有二进制结果的二元数据进行多级建模的指南

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摘要

In the social and health sciences, data are often structured hierarchically, with individuals nested within groups. Dyads constitute a special case of hierarchically structured data with variation at both the individual and dyadic level. Analyses of data from dyads pose several challenges due to the interdependence between members within dyads and issues related to small group sizes. Multilevel analytic techniques have been developed and applied to dyadic data in an attempt to resolve these issues. In this article, we describe a set of analyses for modeling individual- and dyad-level influences on binary outcomes using SAS statistical software; and we discuss the benefits and limitations of such an approach. For illustrative purposes, we apply these techniques to estimate individual-dyad-level predictors of viral hepatitis C infection among heterosexual couples in East Harlem, New York City.
机译:在社会科学和卫生科学中,数据通常是分层结构的,个人嵌套在组中。二元组构成了层次结构化数据的特殊情况,在个人和二进位级都有变化。由于二元组内成员之间的相互依赖性以及与小组规模有关的问题,对二元组数据的分析提出了一些挑战。为了解决这些问题,已经开发了多级分析技术并将其应用于二进位数据。在本文中,我们描述了一组使用SAS统计软件对个体和二元水平对二元结果的影响进行建模的分析;我们讨论了这种方法的好处和局限性。为了说明的目的,我们应用这些技术来估计纽约市东哈莱姆市异性恋夫妇中丙型肝炎病毒感染的双级预测因子。

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