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Comparison of Methods for Factor Invariance Testing of a 1-Factor Model With Small Samples and Skewed Latent Traits

机译:具有小样本和倾斜潜在特征的一因素模型因子不变性检验方法的比较

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摘要

A primary underlying assumption for researchers using a psychological scale is that scores are comparable across individuals from different subgroups within the population. In the absence of invariance, the validity of these scores for inferences about individuals may be questionable. Factor invariance testing refers to the methodological approach to assessing whether specific factor model parameters are indeed equivalent across groups. Though much research has investigated the performance of several techniques for assessing invariance, very little work has examined how methods perform under small sample size, and non-normally distributed latent trait conditions. Therefore, the purpose of this simulation study was to compare invariance assessment Type I error and power rates between (a) the normal based maximum likelihood estimator, (b) a skewed-t distribution maximum likelihood estimator, (c) Bayesian estimation, and (d) the generalized structured component analysis model. The study focused on a 1-factor model. Results of the study demonstrated that the maximum likelihood estimator was robust to violations of normality of the latent trait, and that the Bayesian and generalized component models may be useful in particular situations. Implications of these findings for research and practice are discussed.
机译:使用心理量表的研究人员的基本假设是,该群体中不同亚组的个体之间的得分具有可比性。在没有不变性的情况下,这些分数对个人推理的有效性可能值得怀疑。因子不变性测试是指评估特定因子模型参数在各组之间是否确实等效的方法学方法。尽管有大量研究调查了几种评估不变性的技术的性能,但很少有工作研究方法在小样本量和非正态分布潜在性状条件下的性能。因此,本模拟研究的目的是比较(a)基于正态的最大似然估计器,(b)倾斜t分布最大似然估计器,(c)贝叶斯估计和( d)广义结构化成分分析模型。该研究集中于一因素模型。研究结果表明,最大似然估计器对潜在特征的正态性的违反具有鲁棒性,并且贝叶斯模型和广义分量模型在特定情况下可能有用。讨论了这些发现对研究和实践的意义。

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