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Heywood You Go Away! Examining Causes, Effects, and Treatments for Heywood Cases in Exploratory Factor Analysis

机译:海伍德,你走开!在探索性因素分析中检查海伍德病例的原因、影响和治疗方法

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摘要

Exploratory factor analysis (EFA) is a popular method for elucidating the latent structure of data. Unfortunately, EFA models can sometimes produce improper solutions with nonsensical results. For example, improper EFA solutions can include one or more Heywood cases, where common factors account for 100 or more of an observed variable's variance. To better understand these senseless estimates, we conducted four Monte Carlo studies that illuminate the (a) causes, (b) consequences, and (c) effective treatments for Heywood cases in EFA models. Studies 1 and 2 showed that numerous model and data characteristics are associated with Heywood cases, such as small sample sizes, poorly defined factors with low factor score determinacy values, and factor overextraction. In Study 3, we examined the consequences of Heywood cases for EFA model interpretation and found that Heywood cases increase factor loading variances and upwardly bias factor score determinacy values. Study 4 compared the model recovery of several EFA algorithms that were designed to avoid Heywood cases. Our results indicated that, among the algorithms compared, regularized common factor analysis (Jung Takane, 2008) was the most reliable method for avoiding Heywood cases and producing EFA parameter estimates with small mean squared errors. We discuss best practices for conducting EFA with data sets that might yield Heywood cases.
机译:探索性因素分析(脂肪酸)是一种流行阐明的潜在结构的方法数据。产生不当与荒谬的解决方案结果。包括一个或多个海伍德案件,常见因素占100%或更多的观察变量的方差。毫无意义的估计,我们进行了四个蒙特卡洛的研究说明(a)的原因,(b)后果,(c)有效的治疗海伍德案件电弧炉模型。表明,许多模型和数据特征与海伍德相关联情况下,如小样本大小,定义得非常糟糕因素因素得分较低确定性值,overextraction和因素。研究了海伍德案件的后果电弧炉模型解释和发现海伍德情况下增加因子载荷差异,向上确定性偏差因子得分值。几个研究4比较了模型复苏电弧炉的算法设计海伍德案件。算法相比,正规化的普遍因子分析(荣格& Takane, 2008)避免海伍德案件的最可靠的方法电弧炉和生产参数估计与小均方误差。电弧炉进行可能的数据集收益率海伍德案件。

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