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评估精神病理学的有序分类项目中,估计方法对进行特质水平推断的影响。

Effects of estimation methods on making trait-level inferences from ordered categorical items for assessing psychopathology.

作者信息

Dumenci Levent, Achenbach Thomas M

机构信息

Department of Social and Behavioral Health, Virginia Commonwealth University, Richmond, VA 23298, USA.

出版信息

Psychol Assess. 2008 Mar;20(1):55-62. doi: 10.1037/1040-3590.20.1.55.

Abstract

In assessments of attitudes, personality, and psychopathology, unidimensional scale scores are commonly obtained from Likert scale items to make inferences about individuals' trait levels. This study approached the issue of how best to combine Likert scale items to estimate test scores from the practitioner's perspective: Does it really matter which method is used to estimate a trait? Analyses of 3 data sets indicated that commonly used methods could be classified into 2 groups: methods that explicitly take account of the ordered categorical item distributions (i.e., partial credit and graded response models of item response theory, factor analysis using an asymptotically distribution-free estimator) and methods that do not distinguish Likert-type items from continuously distributed items (i.e., total score, principal component analysis, maximum-likelihood factor analysis). Differences in trait estimates were found to be trivial within each group. Yet the results suggested that inferences about individuals' trait levels differ considerably between the 2 groups. One should therefore choose a method that explicitly takes account of item distributions in estimating unidimensional traits from ordered categorical response formats. Consequences of violating distributional assumptions were discussed.

摘要

在态度、人格和精神病理学评估中,通常从李克特量表项目中获取单维量表分数,以推断个体的特质水平。本研究从从业者的角度探讨了如何最好地组合李克特量表项目以估计测试分数的问题:使用哪种方法来估计特质真的很重要吗?对3个数据集的分析表明,常用方法可分为两组:明确考虑有序分类项目分布的方法(即项目反应理论的部分计分和等级反应模型、使用渐近无分布估计器的因子分析)和不区分李克特型项目与连续分布项目的方法(即总分、主成分分析、最大似然因子分析)。发现每组内特质估计的差异很小。然而,结果表明,两组之间关于个体特质水平的推断存在相当大的差异。因此,在从有序分类反应格式估计单维特质时,应选择一种明确考虑项目分布的方法。讨论了违反分布假设的后果。

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