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The Separation of Between-Person and Within-Person Components of Individual Change Over Time: A Latent Curve Model With Structured Residuals

机译:个体变化随时间推移的人际和人际组成部分的分离:带有结构残差的潜曲线模型

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摘要

Objective: Although recent statistical and computational developments allow for the empirical testing of psychological theories in ways not previously possible, one particularly vexing challenge remains: how to optimally model the prospective, reciprocal relations between 2 constructs as they developmentally unfold over time. Several analytic methods currently exist that attempt to model these types of relations, and each approach is successful to varying degrees. However, none provide the unambiguous separation over time of between-person and within-person components of stability and change, components that are often hypothesized to exist in the psychological sciences. Our goal in this article is to propose and demonstrate a novel extension of the multivariate latent curve model to allow for the disaggregation of these effects. Method: We begin with a review of the standard latent curve models and describe how these primarily capture between-person differences in change. We then extend this model to allow for regression structures among the time-specific residuals to capture within-person differences in change. Results: We demonstrate this model using an artificial data set generated to mimic the developmental relation between alcohol use and depressive symptomatology spanning 5 repeated measures. Conclusions: We obtain a specificity of results from the proposed analytic-strategy that is not available from other existing methodologies. We conclude with potential limitations of our approach and directions for future research.
机译:目的:尽管最近的统计和计算发展允许以前所未有的方式对心理学理论进行实证检验,但仍然存在一个特别令人烦恼的挑战:当两个结构随着时间的推移发展时,如何对它们之间的预期,相互关系进行最佳建模。当前存在几种试图对这些类型的关系建模的分析方法,并且每种方法在不同程度上都是成功的。但是,没有一个能够提供稳定和变化的人与人之间的随时间的明确区分,而这些通常被认为存在于心理学中。本文的目的是提出并证明多元潜在曲线模型的新颖扩展,以允许分解这些效应。方法:我们首先回顾标准潜伏曲线模型,并描述这些模型主要如何捕捉人与人之间差异的变化。然后,我们扩展该模型,以允许特定时间残差之间的回归结构来捕获人与人之间变化的差异。结果:我们使用人工数据集证明了该模型,该数据集模拟了酒精使用与抑郁症状之间的发展关系,涉及5次重复测量。结论:我们从拟议的分析策略中获得了结果的特异性,而其他现有方法则无法获得这些结果。我们以我们的方法和未来研究方向的潜在局限性作为结论。

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