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Longitudinal Models for Ordinal Data With Many Zeros and Varying Numbers of Response Categories

机译:具有零和变化数量的响应类别的序数数据的纵向模型

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摘要

Ordinal response scales are often used to survey behaviors, including data collected in longitudinal studies. Advanced analytic methods are now widely available for longitudinal data. This study evaluates the performance of 4 methods as applied to ordinal measures that differ by the number of response categories and that include many zeros. The methods considered are hierarchical linear models (HLMs), growth mixture mixed models (GMMMs), latent class growth analysis (LCGA), and 2-part latent growth models (2PLGMs). The methods are evaluated by applying each to empirical response data in which the number of response categories is varied. The methods are applied to each outcome variable, first treating the outcome as continuous and then as ordinal, to compare the performance of the methods given both a different number of response categories and treatment of the variables as continuous versus ordinal. We conclude that although the 2PLGM might be preferred, no method might be ideal.
机译:顺序反应量表通常用于调查行为,包括在纵向研究中收集的数据。先进的分析方法现已广泛用于纵向数据。这项研究评估了4种方法在排序方法上的效果,这些方法因响应类别的数量而不同,并且包含许多零。所考虑的方法是层次线性模型(HLM),混合增长模型(GMMM),潜在类别增长分析(LCGA)和两部分潜在增长模型(2PLGM)。通过将每种方法应用于经验类别的响应数据进行评估,其中响应类别的数量有所变化。将该方法应用于每个结果变量,首先将结果视为连续的,然后视为有序的,以比较给定不同数量的响应类别并将变量作为连续还是有序处理的方法的性能。我们得出结论,尽管2PLGM可能是首选,但没有任何方法可能是理想的。

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