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Growth Curve Modeling to Studying Change: A Comparison of Approaches Using Longitudinal Dyadic Data With Distinguishable Dyads

机译:用于研究变化的增长曲线建模:使用纵向二进数据和可区分染料的方法比较

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摘要

Although methodology articles have increasingly emphasized the need to analyze data from two members of a dyad simultaneously, the most popular method in substantive applications is to examine dyad members separately. This might be due to the underappreciation of the extra information simultaneous modeling strategies can provide. Therefore, the goal of this study was to compare multiple growth curve modeling approaches for longitudinal dyadic data (LDD) in both structural equation modeling and multilevel modeling frameworks. Models separately assessing change over time for distinguishable dyad members are compared to simultaneous models fitted to LDD from both dyad members. Furthermore, we compared the simultaneous default versus dependent approaches (whether dyad pairs' Level 1 [or unique] residuals are allowed to covary and differ in variance). Results indicated that estimates of variance and covariance components led to conflicting results. We recommend the simultaneous dependent approach for inferring differences in change over time within a dyad.
机译:尽管方法论文章越来越强调需要同时分析一个二元组成员的数据,但在实体应用中最流行的方法是分别检查二元组成员。这可能是由于同时建模策略无法提供的额外信息被低估。因此,本研究的目的是在结构方程建模和多级建模框架中比较纵向二进数据(LDD)的多种增长曲线建模方法。将分别评估可区分的dyad成员随时间变化的模型与两个dyad成员对LDD拟合的同时模型进行比较。此外,我们比较了同时违约方法和依存方法(是否使对偶对的1级[或唯一]残差变位且方差不同)。结果表明,方差和协方差分量的估计导致结果不一致。我们建议同时依赖的方法来推断二倍体中随时间变化的差异。

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