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Unique Characteristics of Diagnostic Classification Models: A Comprehensive Review of the Current State-of-the-Art

机译:诊断分类模型的独特特征:对当前最新技术的全面回顾

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Diagnostic classification models (DCM) are frequently promoted by psychometricians as important modelling alternatives for analyzing response data in situations where multivariate classifications of respondents are made on the basis of multiple postulated latent skills. In this review paper, a definitional boundary of the space of DCM is developed, core DCM within this space are reviewed, and their defining features are compared and contrasted with those of other latent variable models. The models to which DCM are compared include unrestricted latent class models, multidimensional factor analysis models, and multidimensional item response theory models. Attention is paid to both statistical considerations of model structure, as well as substantive considerations of model use.
机译:诊断分类模型(DCM)经常被心理学家推崇,作为在基于多个假定的潜在技能对受访者进行多元分类的情况下分析响应数据的重要建模替代方法。在本文中,研究人员开发了DCM空间的定义边界,审查了该空间中的核心DCM,并将其定义特征与其他潜在变量模型进行了比较和对比。与DCM进行比较的模型包括不受限制的潜在类模型,多维因素分析模型和多维项目响应理论模型。注意模型结构的统计考虑以及模型使用的实质性考虑。

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