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首页> 外文期刊>Applied Psychological Measurement >Improving the Assessment of Differential Item Functioning in Large-Scale Programs With Dual-Scale Purification of Rasch Models: The PISA Example
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Improving the Assessment of Differential Item Functioning in Large-Scale Programs With Dual-Scale Purification of Rasch Models: The PISA Example

机译:利用RASCH模型的双尺度净化改善大规模程序中差分项目的评估:PISA示例

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摘要

By design, large-scale educational testing programs often have a large proportion of missing data. Since the effect of missing data on differential item functioning (DIF) assessment has been investigated in recent years and it has been found that Type I error rates tend to be inflated, it is of great importance to adapt existing DIF assessment methods to the inflation. The DIF-free-then-DIF (DFTD) strategy, which originally involved one single-scale purification procedure to identify DIF-free items, has been extended to involve another scale purification procedure for the DIF assessment in this study, and this new method is called the dual-scale purification (DSP) procedure. The performance of the DSP procedure in assessing DIF in large-scale programs, such as Program for International Student Assessment (PISA), was compared with the DFTD strategy through a series of simulation studies. Results showed the superiority of the DSP procedure over the DFTD strategy when tests consisted of many DIF items and when data were missing by design as in large-scale programs. Moreover, an empirical study of the PISA 2009 Taiwan sample was provided to show the implications of the DSP procedure. The applications as well as further studies of DSP procedure are also discussed.
机译:通过设计,大规模的教育测试程序通常具有很大比例的缺失数据。由于近年来研究了缺失数据对差分项目的影响(DIF)评估的影响,并且已经发现I型错误率往往会膨胀,因此适应现有的DIF评估方法对通货膨胀进行了重要意义。最初涉及一种单尺度净化程序以识别不同项目的无差别 - DIF(DFTD)策略已经扩展到涉及本研究中的DIF评估的另一种规模纯化程序,以及这种新方法被称为双尺度纯化(DSP)程序。通过一系列模拟研究将DSP程序评估大规模计划中的DIF评估DIF的DSP程序(比萨斯)的表现。结果显示,当测试组成的测试组成时,DSP程序在DFTD策略上显示了DSP程序的优势,并且在大规模程序中设计时数据缺少数据。此外,提供了对PISA 2009台湾样品的实证研究,以显示DSP程序的影响。还讨论了应用以及对DSP程序的进一步研究。

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