TRANSITIONS IN DRUG USE AMONG HIGH-RISK WOMEN: AN APPLICATION OF LATENT CLASS AND LATENT TRANSITION ANALYSIS.

Stephanie T Lanza, Bethany C Bray
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Abstract

Latent class analysis (LCA) is a statistical approach to identifying underlying subgroups (i.e. latent classes) of individuals based on their responses to a set of observed categorical variables. Latent transition analysis (LTA) extends this framework to longitudinal data in order to estimate the incidence of transitions over time in latent class membership. This study provides an introduction to LCA and LTA, including the use of grouping variables and covariates, and demonstrates the use of two SAS ® procedures (PROC LCA and PROC LTA) to fit these models. The empirical demonstration involved data from 457 women who participated in the Women's Interagency HIV Study (WIHS). First, LCA was used to identify drug use latent classes based on reported use of tobacco, alcohol, marijuana, crack/cocaine/heroin and other drugs. Second, LTA was used to estimate the incidence of transitions in drug use latent classes over a one-year period. Third, racial differences in initial drug use and transitions over time were examined using multiple-groups LTA. Fourth, the effect of participation in an alcohol or drug treatment program on initial latent class membership and transitions over time were examined using LTA with covariates. Measurement invariance across time and groups is examined.

高危妇女药物使用的转变:潜在类别和潜在转变分析的应用。
潜在类分析(LCA)是一种基于个体对一组观察到的分类变量的反应来识别潜在亚群(即潜在类)的统计方法。潜在转移分析(LTA)将该框架扩展到纵向数据,以估计潜在类别成员中随时间变化的转移发生率。本研究介绍了LCA和LTA,包括分组变量和协变量的使用,并演示了使用两个SAS®程序(PROC LCA和PROC LTA)来拟合这些模型。实证论证涉及参加妇女机构间艾滋病毒研究(WIHS)的457名妇女的数据。首先,LCA用于根据报告使用烟草、酒精、大麻、快克/可卡因/海洛因和其他药物来确定潜在的药物使用类别。其次,LTA用于估计一年内药物使用潜在类别转变的发生率。第三,使用多组LTA检查初始药物使用和过渡时间的种族差异。第四,参与酒精或药物治疗计划对初始潜在类别成员和随时间过渡的影响使用LTA和协变量进行了检查。测量不变性跨时间和组进行了检查。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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