Modelling inter-individual differences in latent within-person variation: The confirmatory factor level variability model.

Steffen Nestler
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引用次数: 14

Abstract

Psychological theories often produce hypotheses that pertain to individual differences in within-person variability. To empirically test the predictions entailed by such hypotheses with longitudinal data, researchers often use multilevel approaches that allow them to model between-person differences in the mean level of a certain variable and the residual within-person variance. Currently, these approaches can be applied only when the data stem from a single variable. However, it is common practice in psychology to assess not just a single measure but rather several measures of a construct. In this paper we describe a model in which we combine the single-indicator model with confirmatory factor analysis. The new model allows individual differences in latent mean-level factors and latent within-person variability factors to be estimated. Furthermore, we show how the model's parameters can be estimated with a maximum likelihood estimator, and we illustrate the approach using an example that involves intensive longitudinal data.

模拟潜在的人内变异的个体间差异:验证性因素水平变异模型。
心理学理论经常产生与个体差异有关的假设。为了用纵向数据对这些假设所包含的预测进行实证检验,研究人员经常使用多层方法,使他们能够在某个变量的平均水平和个人内部方差的剩余水平上建立人与人之间的差异模型。目前,这些方法只能应用于数据来自单个变量的情况。然而,在心理学中,通常的做法是对一个构念进行评估,而不是单一的测量,而是几个测量。本文描述了一个将单指标模型与验证性因子分析相结合的模型。新模型允许估计潜在平均水平因素和潜在人内变异性因素的个体差异。此外,我们展示了如何使用最大似然估计器来估计模型的参数,并使用一个涉及大量纵向数据的示例来说明该方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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