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Multiple Imputation of Item Scores in Test and Questionnaire Data, and Influence on Psychometric Results

机译:测验和问卷数据中项目分数的多重估算,以及对心理测量结果的影响

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The performance of five simple multiple imputation methods for dealing with missing data were compared. In addition, random imputation and multivariate normal imputation were used as lower and upper benchmark, respectively. Test data were simulated and item scores were deleted such that they were either missing completely at random, missing at random, or not missing at random. Cronbach's alpha, Loevinger's scalability coefficient H, and the item cluster solution from Mokken scale analysis of the complete data were compared with the corresponding results based on the data including imputed scores. The multiple-imputation methods, two-way with normally distributed errors, corrected item-mean substitution with normally distributed errors, and response function, produced discrepancies in Cronbach's coefficient alpha, Loevinger's coefficient H, and the cluster solution from Mokken scale analysis, that were smaller than die discrepancies in upper benchmark multivariate normal imputation.
机译:比较了五种简单的多重插补方法处理缺失数据的性能。此外,随机插补和多元正态插补分别用作下基准和上基准。模拟测试数据并删除项目分数,以便它们完全随机丢失,随机丢失或随机丢失。将Cronbach的alpha,Loevinger的可伸缩性系数H和来自Mokken规模分析的完整数据的项目聚类解决方案与基于包括估算得分在内的数据的相应结果进行比较。多重输入法,具有正态分布误差的双向,具有正态分布误差的校正项均值替换以及响应函数,在Cronbach系数α,Loevinger系数H和Mokken规模分析的聚类解中产生了差异。小于上基准多元法线插补中的差异。

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