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Balancing Flexible Constraints and Measurement Precision in Computerized Adaptive Testing

机译:在计算机自​​适应测试中平衡柔性约束和测量精度

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摘要

Managing test specifications-both multiple nonstatistical constraints and flexibly defined constraints-has become an important part of designing item selection procedures for computerized adaptive tests (CATs) in achievement testing. This study compared the effectiveness of three procedures: constrained CAT, flexible modified constrained CAT, and the weighted penalty model in balancing multiple flexible constraints and maximizing measurement precision in a fixed-length CAT. The study also addressed the effect of two different test lengths-25 items and 50 items-and of including or excluding the randomesque item exposure control procedure with the three methods, all of which were found effective in selecting items that met flexible test constraints when used in the item selection process for longer tests. When the randomesque method was included to control for item exposure, the weighted penalty model and the flexible modified constrained CAT models performed better than did the constrained CAT procedure in maintaining measurement precision. When no item exposure control method was used in the item selection process, no practical difference was found in the measurement precision of each balancing method.
机译:管理测试规范(多个非统计约束和灵活定义的约束)已成为设计成绩测试中计算机自适应测试(CAT)的项目选择程序的重要组成部分。这项研究比较了三种程序的有效性:约束CAT,灵活修改的约束CAT和加权罚分模型,用于平衡固定长度CAT中的多个柔性约束并最大化测量精度。该研究还解决了两种不同的测试长度(25个项目和50个项目)的影响,以及通过三种方法包括或排除随机式项目暴露控制程序的影响,发现所有这些方法都可以有效地选择使用灵活测试约束条件的项目在项目选择过程中进行更长的测试。当包括随机方法来控制项目暴露时,加权罚分模型和灵活的修改后的约束CAT模型在保持测量精度方面的表现优于约束CAT程序。当在项目选择过程中未使用项目曝光控制方法时,在每种平衡方法的测量精度上都没有发现实际差异。

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