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简约非对称项目反应理论模型与互补对数链接。

Parsimonious asymmetric item response theory modeling with the complementary log-log link.

机构信息

University of Missouri, Columbia, MO, USA.

出版信息

Behav Res Methods. 2023 Jan;55(1):200-219. doi: 10.3758/s13428-022-01824-5. Epub 2022 Mar 30.

Abstract

Traditional item response theory (IRT) models assume a symmetric error distribution and rely on symmetric (logit or probit) link functions to model the response probabilities. As an alternative, we investigated the one-parameter complementary log-log model (CLLM), which is founded on an asymmetric error distribution and results in an asymmetric item response function with important psychometric properties. In a series of simulation studies, we demonstrate that the CLLM (a) is estimable in small sample sizes, (b) facilitates item-weighted scoring, and (c) accounts for the effect of guessing, despite the presence of a single parameter. We then provide further evidence for these claims by applying the CLLM to empirical data. Finally, we discuss how this work contributes to the growing psychometric literature on model complexity.

摘要

传统的项目反应理论 (IRT) 模型假设误差分布是对称的,并依赖对称的(对数或概率)链接函数来对响应概率进行建模。作为替代,我们研究了单参数互补对数-对数模型 (CLLM),它基于非对称误差分布,产生具有重要心理计量特性的非对称项目反应函数。在一系列模拟研究中,我们证明了 CLLM(a)在小样本量下可估计,(b)有助于项目加权评分,以及 (c)尽管只有一个参数,但它考虑了猜测的影响。然后,我们通过将 CLLM 应用于实证数据,为这些主张提供了进一步的证据。最后,我们讨论了这项工作如何为模型复杂性不断增长的心理计量学文献做出贡献。

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