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The Use of Multiple Imputation for Missing Data in Uniform DIF Analysis: Power and Type I Error Rates

机译:在均匀DIF分析中对缺失数据使用多重插补:功效和I类错误率

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Methods of uniform differential item functioning (DIF) detection have been extensively studied in the complete data case. However, less work has been done examining the performance of these methods when missing item responses are present. Research that has been done in this regard appears to indicate that treating missing item responses as incorrect can lead to inflated Type I error rates (false detection of DIF). The current study builds on this prior research by investigating the utility of multiple imputation methods for missing item responses, in conjunction with standard DIF detection techniques. Results of the study support the use of multiple imputation for dealing with missing item responses. The article concludes with a discussion of these results for multiple imputation in conjunction with other research findings supporting its use in the context of item parameter estimation with missing data.View full textDownload full textRelated var addthis_config = { ui_cobrand: "Taylor & Francis Online", services_compact: "citeulike,netvibes,twitter,technorati,delicious,linkedin,facebook,stumbleupon,digg,google,more", pubid: "ra-4dff56cd6bb1830b" }; Add to shortlist Link Permalink http://dx.doi.org/10.1080/08957347.2011.607054
机译:在完整的数据案例中,对统一的差异项功能(DIF)检测方法进行了广泛的研究。但是,在缺少项目响应的情况下,检查这些方法的性能的工作很少。在这方面进行的研究似乎表明,将缺失的项目响应视为不正确会导致I型错误率上升(错误检测DIF)。当前的研究是在此先前研究的基础上,结合标准DIF检测技术,对缺失项目响应的多种插补方法进行了研究。研究结果支持使用多重插补来处理遗漏的项目答复。本文最后讨论了多重插补的这些结果,并结合其他研究结果支持在缺少数据的项目参数估计的情况下使用它。查看全文下载全文相关的var addthis_config = {ui_cobrand:“ Taylor&Francis Online”, services_compact:“ citeulike,netvibes,twitter,technorati,可口,linkedin,facebook,stumbleupon,digg,google,更多”,发布:“ ra-4dff56cd6bb1830b”};添加到候选列表链接永久链接http://dx.doi.org/10.1080/08957347.2011.607054

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