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Exploring Incomplete Rating Designs With Mokken Scale Analysis

机译:利用Mokken规模分析探索不完整的评级设计

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摘要

Recent research has explored the use of models adapted from Mokken scale analysis as a nonparametric approach to evaluating rating quality in educational performance assessments. A potential limiting factor to the widespread use of these techniques is the requirement for complete data, as practical constraints in operational assessment systems often limit the use of complete rating designs. In order to address this challenge, this study explores the use of missing data imputation techniques and their impact on Mokken-based rating quality indicators related to rater monotonicity, rater scalability, and invariant rater ordering. Simulated data and real data from a rater-mediated writing assessment were modified to reflect varying levels of missingness, and four imputation techniques were used to impute missing ratings. Overall, the results indicated that simple imputation techniques based on rater and student means result in generally accurate recovery of rater monotonicity indices and rater scalability coefficients. However, discrepancies between violations of invariant rater ordering in the original and imputed data are somewhat unpredictable across imputation methods. Implications for research and practice are discussed.
机译:最近的研究探索了使用Mokken Scale分析调整的模型作为评估教育绩效评估中评级质量的非参数方法。广泛使用这些技术的潜在限制因素是对完整数据的要求,因为操作评估系统中的实际限制通常限制了完全评定设计的使用。为了解决这一挑战,本研究探讨了缺少数据撤销技术的使用及其对与Rater单调性,rater可扩展性和不变速率订购相关的基于Mokken的评级质量指标的影响。修改了来自评估评估的写作评估的模拟数据和实际数据以反映不同水平的缺失,并且使用四种估算技术来赋予缺失的评级。总的来说,结果表明,基于评估者和学生的简单估算技术意味着速溶于单调性指数和Rater可扩展性系数的大致准确恢复。但是,违反原始数据和估算数据中的不变速度订单之间的差异有些不可预测的方法。讨论了对研究和实践的影响。

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