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Item-fit evaluation in biased tests: a study under Rasch model

机译:偏倚测试中的项目适合度评估:Rasch模型下的研究

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摘要

In this paper, the power rates and distributional properties of the Outfit, Infit, Lz, ECI2z and ECI4z statistics when they are used in tests with biased or differential item functioning (DIF) were explored. In this study, different conditions of sample size, sample size ratio focal and reference group, impact between groups, DIF effect size, and percentage of DIF items were manipulated. In addition, examinee responses were generated to simulate uniform DIF. Results suggest that item fit statistics generally detected medium percents of DIF in large samples (1000/500 or 1000/1000) only when DIF effect size was relatively high and when the mean of focal and reference group was different. Moreover, when groups had equal mean, low correct identification rates were found in the five item-fit indices. In general, the results showed adequate control of false positive rates. These findings lead to the conclusion that all indices used in this study are partially adequate fit measures for detecting biased items, mainly when impact between groups is present and sample size is large.
机译:本文探讨了Outfit,Infit,Lz,ECI2z和ECI4z统计数据在有偏项或差分项功能(DIF)的测试中使用时的电价和分布特性。在这项研究中,操纵了不同条件的样本量,样本量比重和参照组,组之间的影响,DIF效应量和DIF项目的百分比。此外,还生成了考生答复以模拟统一的DIF。结果表明,项目拟合统计通常仅在DIF效果大小相对较高且焦点组和参考组的平均值不同时,才在大样本(1000/500或1000/1000)中检测到中等百分比的DIF。此外,当组的均值相等时,在五个项目拟合指数中发现的正确识别率较低。通常,结果表明对假阳性率的控制足够。这些发现得出的结论是,本研究中使用的所有指标在某种程度上都是用于检测偏倚项目的合适指标,主要是当存在组间影响且样本量较大时。

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