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Conditional Statistical Inference with Multistage Testing Designs

机译:多阶段测试设计的条件统计推断

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摘要

In this paper it is demonstrated how statistical inference from multistage test designs can be made based on the conditional likelihood. Special attention is given to parameter estimation, as well as the evaluation of model fit. Two reasons are provided why the fit of simple measurement models is expected to be better in adaptive designs, compared to linear designs: more parameters are available for the same number of observations; and undesirable response behavior, like slipping and guessing, might be avoided owing to a better match between item difficulty and examinee proficiency. The results are illustrated with simulated data, as well as with real data.
机译:本文证明了如何根据条件似然来进行多阶段测试设计的统计推断。特别注意参数估计以及模型拟合的评估。与线性设计相比,提供了两个理由说明为什么简单测量模型在自适应设计中的拟合性更好,而线性设计则更多。由于题目难度和考生熟练程度更好地匹配,可以避免诸如滑动和猜测之类的不良反应行为。结果用模拟数据和实际数据进行说明。

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