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双变量潜变量变化得分模型实施时时间度量精度的重要性。

The Importance of Time Metric Precision When Implementing Bivariate Latent Change Score Models.

机构信息

T. Denny Sanford School of Social and Family Dynamics, Arizona State University, Tempe, Arizona, USA.

出版信息

Multivariate Behav Res. 2022 Jul-Aug;57(4):561-580. doi: 10.1080/00273171.2021.1874261. Epub 2021 Feb 1.

Abstract

The literature on latent change score models does not discuss the importance of using a precise time metric when structuring the data. This study examined the influence of time metric precision on model estimation, model interpretation, and parameter estimate accuracy in bivariate LCS (BLCS) models through simulation. Longitudinal data were generated with a panel study where assessments took place during a given time window with variation in start time and measurement lag. The data were analyzed using precise time metric, where variation in time was accounted for, and then analyzed using coarse time metric indicating only that the assessment took place during the time window. Results indicated that models estimated using the coarse time metric resulted in biased parameter estimates as well as larger standard errors and larger variances and covariances for intercept and slope. In particular, the coupling parameter estimates-which are unique to BLCS models-were biased with larger standard errors. An illustrative example of longitudinal bivariate relations between math and reading achievement in a nationally representative survey of children is then used to demonstrate how results and conclusions differ when using time metrics of varying precision. Implications and future directions are discussed.

摘要

潜变量变化分数模型的文献并没有讨论在构建数据时使用精确时间度量的重要性。本研究通过模拟,考察了在二元潜变量变化分数(BLCS)模型中,时间度量精度对模型估计、模型解释和参数估计准确性的影响。使用面板研究生成了纵向数据,其中评估在给定的时间窗口内进行,开始时间和测量滞后存在变化。数据使用精确时间度量进行分析,其中考虑了时间的变化,然后使用仅表示评估在时间窗口内进行的粗时间度量进行分析。结果表明,使用粗时间度量估计的模型会导致参数估计有偏差,以及截距和斜率的标准误差更大、方差和协方差更大。特别是,BLCS 模型特有的耦合参数估计存在偏差,标准误差更大。然后,使用具有全国代表性的儿童调查中数学和阅读成绩之间的纵向二元关系的实例来说明,当使用不同精度的时间度量时,结果和结论会有何不同。讨论了影响和未来方向。

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