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An External Validity Approach for Assessing Essential Unidimensionality in Correlated-Factor Models

机译:相关因子模型中评估基本单向性的外部有效性方法

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摘要

Many psychometric measures yield data that are compatible with (a) an essentially unidimensional factor analysis solution and (b) a correlated-factor solution. Deciding which of these structures is the most appropriate and useful is of considerable importance, and various procedures have been proposed to help in this decision. The only fully developed procedures available to date, however, are internal, and they use only the information contained in the item scores. In contrast, this article proposes an external auxiliary procedure in which primary factor scores and general factor scores are related to relevant external variables. Our proposal consists of two groups of procedures. The procedures in the first group (differential validity procedures) assess the extent to which the primary factor scores relate differentially to the external variables. Procedures in the second group (incremental validity procedures) assess the extent to which the primary factor scores yield predictive validity increments with respect to the single general factor scores. Both groups of procedures are based on a second-order structural model with latent variables from which new methodological results are obtained. The functioning of the proposal is assessed by means of a simulation study, and its usefulness is illustrated with a real-data example in the personality domain.
机译:许多心理测量措施屈服于与(a)具有基本上单向因子分析溶液和(b)相关因子溶液的数据。决定哪些结构是最合适的,有用的是重要的,并且已经提出了各种程序来帮助这一决定。但是,迄今为止的唯一完全开发的程序是内部的,并且它们仅使用项目分数中包含的信息。相比之下,本文提出了一种外部辅助程序,其中主要因子分数和一般因子分数与相关的外部变量有关。我们的提案包括两组程序。第一组(差分有效性程序)中的过程评估主要因子分数与外部变量差异的程度。第二组中的程序(增量有效期)评估主要因素得分的程度,其在单一一般因子分数方面得分预测有效性增量。两组程序基于第二阶结构模型,具有获得新方法结果的潜在变量。通过模拟研究评估提案的运作,其有用性在人格域中的实际数据示例说明。

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