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GGUM-RANK Statement and Person Parameter Estimation With Multidimensional Forced Choice Triplets

机译:GGUM-Rank语句和多维强制选择三联网的参数估算

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摘要

Historically, multidimensional forced choice (MFC) measures have been criticized because conventional scoring methods can lead to ipsativity problems that render scores unsuitable for interindividual comparisons. However, with the recent advent of item response theory (IRT) scoring methods that yield normative information, MFC measures are surging in popularity and becoming important components in high-stake evaluation settings. This article aims to add to burgeoning methodological advances in MFC measurement by focusing on statement and person parameter recovery for the GGUM-RANK (generalized graded unfolding-RANK) IRT model. Markov chain Monte Carlo (MCMC) algorithm was developed for estimating GGUM-RANK statement and person parameters directly from MFC rank responses. In simulation studies, it was examined that how the psychometric properties of statements composing MFC items, test length, and sample size influenced statement and person parameter estimation; and it was explored for the benefits of measurement using MFC triplets relative to pairs. To demonstrate this methodology, an empirical validity study was then conducted using an MFC triplet personality measure. The results and implications of these studies for future research and practice are discussed.
机译:从历史上看,多维强制选择(MFC)措施受到批评,因为传统的评分方法可能导致Ipsativity问题,以渲染不适合的间面比较的分数。然而,随着项目响应理论的最近出现(IRT)评分方法产生规范信息,MFC措施越来越受欢迎,并成为高赌注评估设置中的重要组成部分。本文旨在通过专注于GGUM - 秩(广义分级展开秩)IRT模型的声明和人参数恢复来增加MFC测量的蓬勃发展方法研究。 Markov Chain Monte Carlo(MCMC)算法开发用于直接从MFC排名响应估算GGUM-Rank语句和人参数。在仿真研究中,检查了组成MFC项目,测试长度和样本大小影响陈述和人参数估计的语句的心理测量特性。并探讨了使用MFC三元组相对于对测量的益处。为了证明这种方法,然后使用MFC三重态人格测量进行经验有效性研究。讨论了这些研究对未来研究和实践的研究。

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