成就测试混合格式项目的平行优化校准

IF 2.9 2区 心理学 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS Psychometrika Pub Date : 2024-04-15 DOI:10.1007/s11336-024-09968-3
Frank Miller, Ellinor Fackle-Fornius
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引用次数: 0

摘要

在定期进行大型成绩测验时,需要对测验项目进行校准,然后才能将其用作测验中的操作项目。目前已经开发出了一些方法,可以根据考生的能力来为他们分配最佳的测前项目。然而,这些方法大多适用于考生依次到达考场,被分配到校准项目的情况。在一些校准测试中,考生会同时或平行参加测试。在本文中,我们为这种平行测试设置开发了一种最佳校准设计。我们的目的既是为了研究该方法的效率增益,也是为了证明该方法可在实际校准场景中实施。对于后者,我们采用了这种方法来校准瑞典国家数学测试的项目。在这个案例研究中,就像在许多真实的测试环境中一样,题目是混合格式的,优化设计方法需要处理这种情况。我们提出的方法适用于混合形式的测试,并考虑到了不同的预期反应时间。我们的研究表明,所提出的方法大大提高了校准效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Parallel Optimal Calibration of Mixed-Format Items for Achievement Tests

When large achievement tests are conducted regularly, items need to be calibrated before being used as operational items in a test. Methods have been developed to optimally assign pretest items to examinees based on their abilities. Most of these methods, however, are intended for situations where examinees arrive sequentially to be assigned to calibration items. In several calibration tests, examinees take the test simultaneously or in parallel. In this article, we develop an optimal calibration design tailored for such parallel test setups. Our objective is both to investigate the efficiency gain of the method as well as to demonstrate that this method can be implemented in real calibration scenarios. For the latter, we have employed this method to calibrate items for the Swedish national tests in Mathematics. In this case study, like in many real test situations, items are of mixed format and the optimal design method needs to handle that. The method we propose works for mixed-format tests and accounts for varying expected response times. Our investigations show that the proposed method considerably enhances calibration efficiency.

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来源期刊
Psychometrika
Psychometrika 数学-数学跨学科应用
CiteScore
4.40
自引率
10.00%
发文量
72
审稿时长
>12 weeks
期刊介绍: The journal Psychometrika is devoted to the advancement of theory and methodology for behavioral data in psychology, education and the social and behavioral sciences generally. Its coverage is offered in two sections: Theory and Methods (T& M), and Application Reviews and Case Studies (ARCS). T&M articles present original research and reviews on the development of quantitative models, statistical methods, and mathematical techniques for evaluating data from psychology, the social and behavioral sciences and related fields. Application Reviews can be integrative, drawing together disparate methodologies for applications, or comparative and evaluative, discussing advantages and disadvantages of one or more methodologies in applications. Case Studies highlight methodology that deepens understanding of substantive phenomena through more informative data analysis, or more elegant data description.
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