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The disaggregation of within-person and between-person effects in longitudinal models of change

机译:纵向变化模型中人与人之间和人与人之间关系的分解

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摘要

Longitudinal models are becoming increasingly prevalent in the behavioral sciences, with key advantages including increased power, more comprehensive measurement, and establishment of temporal precedence. One particularly salient strength offered by longitudinal data is the ability to disaggregate between-person and within-person effects in the regression of an outcome on a time-varying covariate. However, the ability to disaggregate these effects has not been fully capitalized upon in many social science research applications. Two likely reasons for this omission are the general lack of discussion of disaggregating effects in the substantive literature and the need to overcome several remaining analytic challenges that limit existing quantitative methods used to isolate these effects in practice. This review explores both substantive and quantitative issues related to the disaggregation of effects over time, with a particular emphasis placed on the multilevel model. Existing analytic methods are reviewed, a general approach to the problem is proposed, and both the existing and proposed methods are demonstrated using several artificial data sets. Potential limitations and directions for future research are discussed, and recommendations for the disaggregation of effects in practice are offered.
机译:纵向模型在行为科学中正变得越来越普遍,其主要优势包括增强的功能,更全面的度量以及建立时间优先级。纵向数据提供的一项特别显着的优势是,能够在时变协变量的结果回归中分解人与人之间的影响。但是,在许多社会科学研究应用中,尚未充分利用分解这些影响的能力。造成这种遗漏的两个可能原因是,在实质性文献中普遍缺乏对分解效应的讨论,并且有必要克服一些尚在分析中的挑战,这些挑战限制了在实践中用于隔离这些效应的现有定量方法。这篇综述探讨了随着时间的流逝影响分解的实质性和定量性问题,特别着重于多层次模型。回顾了现有的分析方法,提出了解决该问题的通用方法,并使用几个人工数据集对现有方法和拟议方法进行了论证。讨论了未来研究的潜在局限性和方向,并提供了在实践中分解影响的建议。

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