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A Comparison of Different Item Response Theory Models for Scaling Speeded C-Tests

机译:不同项目响应理论模型的比较缩放速度C-Tests

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摘要

As measures of general language proficiency, C-tests are ubiquitous in language testing. Speeded C-tests are quite recent developments in the field and are deemed to be more discriminatory and provide more accurate diagnostic information than power C-tests especially with high-ability participants. Item response theory modeling of speeded C-tests has not been discussed in the literature, and current approaches for power C-tests based on ordinal models either violate the model assumptions or are relatively complex to be reliably fitted with small samples. Count data models are viable alternatives with less restrictive assumptions and lower complexity. In the current study, we compare count data models with commonly applied ordinal models for modeling a speeded C-test. It was found that a flexible count data model fits equally well in absolute and relative terms as compared with ordinal models. Implications and feasibility of count data models for the psychometric modeling of C-tests are discussed.
机译:作为衡量语言能力的标准,C测试在语言测试中无处不在。快速C-测试是该领域的最新发展,被认为比强力C-测试更具歧视性,提供更准确的诊断信息,尤其是对于高能力参与者。文献中尚未讨论快速C-测试的项目反应理论建模,目前基于序数模型的幂C-测试方法要么违反模型假设,要么相对复杂,无法可靠地用小样本拟合。计数数据模型是可行的替代方案,具有较少的限制性假设和较低的复杂性。在当前的研究中,我们将计数数据模型与常用的序数模型进行比较,以建立快速C检验模型。研究发现,与序数模型相比,灵活的计数数据模型在绝对和相对方面同样适用。讨论了计数数据模型在C-测验心理测量学建模中的意义和可行性。

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