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Modeling Booklet Effects for Nonequivalent Group Designs in Large-Scale Assessment

机译:大规模评估中不等价群体设计的小册子效果建模

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摘要

Multiple matrix designs are commonly used in large-scale assessments to distribute test items to students. These designs comprise several booklets, each containing a subset of the complete item pool. Besides reducing the test burden of individual students, using various booklets allows aligning the difficulty of the presented items to the assumed performance level of examined subgroups. While this may improve measurement precision and students' test-taking motivation, using several booklets might influence response behavior and thus constitute a potential source of unwanted variation. To provide guidance to identify and model booklet effects, this study presents statistical models accounting for booklet effects and applies these models in a large-scale assessment setting. Three models are derived from the Rasch model employing the generalized linear mixed models framework. The models were applied to data from a national educational standards assessment study for scientific competence. A total of 1,021 items were compiled to 74 booklets distributed to a sample of 9,044 students of Grades 9 and 10. The results revealed a small but nonnegligible booklet effect. For further large-scale assessment studies, it is recommended to examine whether booklet effects occur and to adequately account for them in the subsequent analyses where necessary.
机译:大型评估中通常使用多种矩阵设计来向学生分发测试项目。这些设计包括几本小册子,每个小册子都包含完整项目库的一个子集。除了减少个别学生的考试负担之外,使用各种小册子还可以使所提出的项目的难度与所检验的子组的假定表现水平保持一致。虽然这可以提高测量精度和学生的考试动机,但使用几本小册子可能会影响响应行为,从而构成不想要的变化的潜在来源。为了提供识别和模拟小册子效果的指导,本研究提出了统计小册子效果的统计模型,并将这些模型应用于大规模评估环境。使用广义线性混合模型框架从Rasch模型派生出三个模型。这些模型被应用于来自国家教育标准评估研究的数据,以进行科学能力研究。总共1,021项被编入74本小册子中,分发给了9,044年级的9,044名学生样本。结果显示,小册子的作用很小但不可忽略。对于进一步的大规模评估研究,建议检查小册子效果是否发生,并在必要时在后续分析中充分考虑它们。

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