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An empirical Q-matrix validation method for the sequential generalized DINA model

机译:顺序推广DINA模型的经验Q矩阵验证方法

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摘要

As a core component of most cognitive diagnosis models, the Q-matrix, or item and attribute association matrix, is typically developed by domain experts, and tends to be subjective. It is critical to validate the Q-matrix empirically because a misspecified Q-matrix could result in erroneous attribute estimation. Most existing Q-matrix validation procedures are developed for dichotomous responses. However, in this paper, we propose a method to empirically detect and correct the misspecifications in the Q-matrix for graded response data based on the sequential generalized deterministic inputs, noisy 'and' gate (G-DINA) model. The proposed Q-matrix validation procedure is implemented in a stepwise manner based on the Wald test and an effect size measure. The feasibility of the proposed method is examined using simulation studies. Also, a set of data from the Trends in International Mathematics and Science Study (TIMSS) 2011 mathematics assessment is analysed for illustration.
机译:作为大多数认知诊断模型的核心组件,Q矩阵或项目和属性关联矩阵通常由域专家开发,并且往往是主观的。 验证Q-Matrix是至关重要的,因为错过的Q矩阵可能导致错误的属性估计。 大多数现有的Q矩阵验证程序是为二分法反应开发的。 然而,在本文中,我们提出了一种方法来基于顺序广义的确定性输入,噪声'和'门(G-DINA)模型来经验地检测和校正Q矩阵中的Q矩阵的误操作。 所提出的Q矩阵验证程序是以沃尔德测试和效果大小测量的逐步方式实现的。 使用仿真研究检查所提出的方法的可行性。 此外,分析了来自国际数学和科学研究(TIMSS)2011数学评估的趋势的一组数据进行了说明。

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