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Testing the degree of cross-sectional and longitudinal dependence between two discrete dynamic processes

机译:测试两个离散动态过程之间的横截面和纵向依存度

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Developmental research often involves studying change across 2 or more processes or constructs simultaneously. A natural question in this work is whether change in these 2 processes is related or independent. Associative latent transition analysis (ALTA) was designed to test hypotheses about the degree to which change in 2 discrete latent variables is related. The ALTA model is a type of latent class model, which is a categorical, latent variable model based on categorical indicators. In the ALTA approach, level and change on I variable is predicted by level and change in another. Two types of hypotheses are discussed: (a) broad hypotheses of dependence between the 2 discrete latent variables and (b) targeted hypotheses comparing specific patterns of change between levels of the discrete variables. Both types of hypotheses are tested via nested model comparisons. Analyses of relations between psychological state and substance use illustrate the model, Recent psychological state and recent substance use were found to be associated cross-sectionally and longitudinally, implying that change in recent substance use was related to change in recent psychological state.
机译:发展研究通常涉及同时研究两个或多个过程或构造的变化。这项工作中的一个自然问题是这两个过程的变化是相关的还是独立的。关联潜在转移分析(ALTA)旨在测试关于2个离散潜在变量的变化相关程度的假设。 ALTA模型是一种潜在类模型,它是一种基于分类指标的分类,潜在变量模型。在ALTA方法中,I变量的水平和变化是通过另一个水平和变化预测的。讨论了两种类型的假设:(a)2个离散潜在变量之间的依存关系的广义假设,以及(b)比较离散变量级别之间变化的特定模式的目标假设。两种类型的假设均通过嵌套模型比较进行测试。心理状态与物质使用之间的关系分析说明了该模型,发现近期的心理状态和近期使用的药物在横断面和纵向上均相关,这表明近期使用药物的变化与近期心理状态的变化有关。

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