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首页> 外文期刊>Psychometrika >HIERARCHICAL DIAGNOSTIC CLASSIFICATION MODELS: A FAMILY OF MODELS FOR ESTIMATING AND TESTING ATTRIBUTE HIERARCHIES
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HIERARCHICAL DIAGNOSTIC CLASSIFICATION MODELS: A FAMILY OF MODELS FOR ESTIMATING AND TESTING ATTRIBUTE HIERARCHIES

机译:层次诊断分类模型:用于估计和测试属性层次结构的模型族

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摘要

Although latent attributes that follow a hierarchical structure are anticipated in many areas of educational and psychological assessment, current psychometric models are limited in their capacity to objectively evaluate the presence of such attribute hierarchies. This paper introduces the Hierarchical Diagnostic Classification Model (HDCM), which adapts the Log-linear Cognitive Diagnosis Model to cases where attribute hierarchies are present. The utility of the HDCM is demonstrated through simulation and by an empirical example. Simulation study results show the HDCM is efficiently estimated and can accurately test for the presence of an attribute hierarchy statistically, a feature not possible when using more commonly used DCMs. Empirically, the HDCM is used to test for the presence of a suspected attribute hierarchy in a test of English grammar, confirming the data is more adequately represented by hierarchical attribute structure when compared to a crossed, or nonhierarchical structure.
机译:尽管在教育和心理评估的许多领域中都期望遵循分层结构的潜在属性,但是当前的心理测量模型在客观评估此类属性层次结构存在的能力方面受到限制。本文介绍了层次诊断分类模型(HDCM),该模型将对数线性认知诊断模型应用于存在属性层次结构的情况。 HDCM的实用性通过仿真和一个经验示例进行了演示。仿真研究结果表明,可以有效地估计HDCM,并且可以通过统计信息准确地测试属性层次结构的存在,这是使用更常用的DCM时无法实现的功能。根据经验,HDCM用于在英语语法测试中测试可疑属性层次结构的存在,从而确认与交叉或非层次结构相比,数据由层次结构属性更充分地表示。

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