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Attribute Discrimination Index-Based Method to Balance Attribute Coverage for Short-Length Cognitive Diagnostic Computerized Adaptive Testing

机译:基于属性辨别索引的方法,用于平衡短度认知诊断计算机化自适应测试的属性覆盖

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We propose a new method that balances attribute coverage for short-length cognitive diagnostic computerized adaptive testing (CD-CAT). The new method uses the attribute discrimination index (ADI-based method) instead of the number of items that measure each attribute (MGDI-based method) to balance the attribute coverage. Therefore, the information that each attribute provides can be captured. The purpose of the simulation study was to evaluate the performance of the new method and the results showed that: (a) Compared with uncontrolled attribute balance coverage method, the new method produced a higher mastery pattern correct classification rate (PCCR) and attribute correct classification rate (ACCR) with both the posterior weighted Kullback–Leibler (PWKL) and the modified posterior weighted Kullback–Leibler (MPWKL) item selection method. (b) Equalization of ACCR (E-ACCR) based on the ADI-based method leads to better results, followed by the MGDI-based method. The uncontrolled method leads to the worst results regardless of item selection methods. (c) Both ADI-based and MGDI-based methods produced acceptable examinee qualification rates, regardless of item selection methods, while it was relatively low for uncontrolled condition.
机译:我们提出了一种新的方法,该方法余额为短宽认知诊断计算机化自适应测试(CD-CAT)的属性覆盖范围。新方法使用属性辨别索引(基于ADI的方法)而不是测量每个属性(基于MGDI的方法)来平衡属性覆盖的项目数。因此,可以捕获每个属性提供的信息。仿真研究的目的是评估新方法的性能,结果表明:(a)与不受控制的属性平衡覆盖方法相比,新方法产生了更高的掌握模式正确的分类率(PCCR)和属性正确的分类速率(accr)与后加权kullback-leibler(pwkl)和改进的后加权kullback-leibler(mpwkl)项目选择方法。 (b)基于ADI的方法的ACCR(E-ACCR)的均衡导致效果更好,然后是基于MGDI的方法。不受控制的方法导致最糟糕的结果,而不管项目选择方法如何。 (c)无论项目选择方法如何,都生产了基于ADI和MGDI的方法,而不管项目选择方法如何,对于不受控制的情况相对较低。

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