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当许多受试者的回答均为零时评估二分项目的维度:来自精神病学的一个例子及使用混合模型的解决方案

Assessing Dimensionality in Dichotomous Items When Many Subjects Have All-Zero Responses: An Example From Psychiatry and a Solution Using Mixture Models.

作者信息

Christensen William F, Wall Melanie M, Moustaki Irini

机构信息

Department of Statistics, Brigham Young University, Provo, Utah, USA.

Department of Psychiatry and Department of Biostatistics, Columbia University, NY, USA.

出版信息

Appl Psychol Meas. 2022 May;46(3):167-184. doi: 10.1177/01466216211066602. Epub 2022 Mar 1.

Abstract

Common methods for determining the number of latent dimensions underlying an item set include eigenvalue analysis and examination of fit statistics for factor analysis models with varying number of factors. Given a set of dichotomous items, the authors demonstrate that these empirical assessments of dimensionality often incorrectly estimate the number of dimensions when there is a preponderance of individuals in the sample with all-zeros as their responses, for example, not endorsing any symptoms on a health battery. Simulated data experiments are conducted to demonstrate when each of several common diagnostics of dimensionality can be expected to under- or over-estimate the true dimensionality of the underlying latent variable. An example is shown from psychiatry assessing the dimensionality of a social anxiety disorder battery where 1, 2, 3, or more factors are identified, depending on the method of dimensionality assessment. An all-zero inflated exploratory factor analysis model (AZ-EFA) is introduced for assessing the dimensionality of the underlying subgroup corresponding to those possessing the measurable trait. The AZ-EFA approach is demonstrated using simulation experiments and an example measuring social anxiety disorder from a large nationally representative survey. Implications of the findings are discussed, in particular, regarding the potential for different findings in community versus patient populations.

摘要

确定一组项目背后潜在维度数量的常用方法包括特征值分析以及对具有不同因子数量的因子分析模型的拟合统计量进行检验。对于一组二分项目,作者证明,当样本中存在大量以全零作为回答的个体时,例如在健康状况量表上不认可任何症状,这些维度的实证评估往往会错误地估计维度数量。进行了模拟数据实验,以证明几种常见维度诊断方法中的每一种何时可能会低估或高估潜在潜变量的真实维度。给出了一个来自精神病学领域的例子,评估社交焦虑症量表的维度,根据维度评估方法的不同,可识别出1个、2个、3个或更多因子。引入了全零膨胀探索性因子分析模型(AZ-EFA)来评估与具有可测量特征的个体相对应的潜在亚组的维度。通过模拟实验和一个来自大型全国代表性调查的测量社交焦虑症的例子展示了AZ-EFA方法。讨论了研究结果的意义,特别是关于社区人群与患者人群中可能出现不同结果的情况。

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