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Factorial Invariance and The Specification of Second-Order Latent Growth Models

机译:阶乘不变性和二阶潜在增长模型的规范

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摘要

Latent growth modeling has been a topic of intense interest during the past two decades. Most theoretical and applied work has employed first-order growth models, in which a single manifest variable serves as indicator of trait level at each time of measurement. In the current paper, we concentrate on issues regarding second-order growth models, which have multiple indicators at each time of measurement. With multiple indicators, tests of factorial invariance of parameters across times of measurement can be tested. We conduct such tests using two sets of data, which differ in the extent to which factorial invariance holds, and evaluate longitudinal confirmatory factor, latent growth curve, and latent difference score models. We demonstrate that, if factorial invariance fails to hold, choice of indicator used to identify the latent variable can have substantial influences on the characterization of patterns of growth, strong enough to alter conclusions about growth. We also discuss matters related to the scaling of growth factors and conclude with recommendations for practice and for future research.
机译:在过去的二十年中,潜在增长模型一直是人们非常感兴趣的话题。大多数理论和应用工作都采用了一阶增长模型,其中单个清单变量在每次测量时都可作为特征水平的指标。在当前的论文中,我们专注于关于二阶增长模型的问题,该模型在每次测量时都有多个指标。使用多个指示器,可以测试跨测量时间的参数因式不变性的测试。我们使用两组数据进行这样的测试,这两组数据在阶乘不变的保持程度上有所不同,并评估纵向确认因子,潜在生长曲线和潜在差异评分模型。我们证明,如果阶乘不变性不能成立,则用于确定潜在变量的指标选择可能会对增长模式的特征产生重大影响,足以改变关于增长的结论。我们还将讨论与增长因子的缩放有关的问题,并为实践和未来研究提供建议。

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