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Evaluating Model Fit in Bayesian Confirmatory Factor Analysis WithLarge Samples: Simulation Study Introducing the BRMSEA

机译:贝叶斯验证因子分析中的模型拟合评估。大样本:引入BRMSEA的模拟研究

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摘要

Bayesian confirmatory factor analysis (CFA) offers an alternative to frequentist CFA based on, for example, maximum likelihood estimation for the assessment of reliability and validity of educational and psychological measures. For increasing sample sizes, however, the applicability of current fit statistics evaluating model fit within Bayesian CFA is limited. We propose, therefore, a Bayesian variant of the root mean square error of approximation (RMSEA), the BRMSEA. A simulation study was performed with variations in model misspecification, factor loading magnitude, number of indicators, number of factors, and sample size. This showed that the 90% posterior probability interval of the BRMSEA is valid for evaluating model fit in large samples (N≥ 1,000), using cutoff values for the lower (<.05) and upper limit (<.08) as guideline. An empirical illustration further shows the advantage of the BRMSEA in large sample Bayesian CFA models. In conclusion, it can be stated that the BRMSEA is well suited to evaluate model fit in large sample Bayesian CFA models by taking sample size and model complexity into account.
机译:贝叶斯验证性因子分析(CFA)提供了一种替代频繁使用CFA的方法,例如基于最大似然估计的教育和心理措施的信度和效度评估。但是,为了增加样本量,在贝叶斯CFA中评估模型拟合的当前拟合统计量的适用性受到限制。因此,我们提出了近似均方根误差(RMSEA)的贝叶斯变体BRMSEA。进行了仿真研究,模型错误指定,因子加载量,指标数量,因子数量和样本大小均存在变化。这表明BRMSEA的90%后验概率区间对于以大样本(N≥1,000)为模型评估模型拟合有效,使用下限(<.05)和上限(<.08)的临界值。经验例证进一步显示了BRMSEA在大型贝叶斯CFA模型中的优势。总之,可以说BRMSEA非常适合通过考虑样本大小和模型复杂性来评估大型样本贝叶斯CFA模型中的模型拟合。

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