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The Effect of Upper and Lower Asymptotes of IRT Models on Computerized Adaptive Testing

机译:IRT模型的上下渐近线对计算机自适应测试的影响

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摘要

In this article, the effect of the upper and lower asymptotes in item response theory models on computerized adaptive testing is shown analytically. This is done by deriving the step size between adjacent latent trait estimates under the four-parameter logistic model (4PLM) and two models it subsumes, the usual three-parameter logistic model (3PLM) and the 3PLM with upper asymptote (3PLMU). The authors show analytically that the large effect of the discrimination parameter on the step size holds true for the 4PLM and the two models it subsumes under both the maximum information method and the b-matching method for item selection. Furthermore, the lower asymptote helps reduce the positive bias of ability estimates associated with early guessing, and the upper asymptote helps reduce the negative bias induced by early slipping. Relative step size between modeling versus not modeling the upper or lower asymptote under the maximum Fisher information method (MI) and the b-matching method is also derived. It is also shown analytically why the gain from early guessing is smaller than the loss from early slipping when the lower asymptote is modeled, and vice versa when the upper asymptote is modeled. The benefit to loss ratio is quantified under both the MI and the b-matching method. Implications of the analytical results are discussed.
机译:本文分析了项目响应理论模型中上下渐近线对计算机自适应测试的影响。这是通过在四参数对数模型(4PLM)和它所包含的两个模型(通常的三参数对数模型(3PLM)和具有上渐近线的3PLM(3PLMU))下得出相邻潜在性状估计之间的步长来完成的。作者通过分析表明,对于4PLM而言,判别参数对步长的巨大影响仍然适用,并且在最大信息法和b匹配法下,它都包含在选择模型的两个模型中。此外,较低的渐近线有助于减少与早期猜测相关的能力估计值的正偏差,而较高的渐近线有助于减少早期滑移引起的负偏差。还推导了在最大Fisher信息方法(MI)和b匹配方法下建模或不建模上下渐近线之间的相对步长。分析还显示了为什么在建模较低的渐近线时从早期猜测中获得的收益小于早期滑移的损失,而在建模较高的渐近线时则相反。在MI和b匹配方法下都可以量化收益与损失的比率。讨论了分析结果的含义。

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