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Sensitivity analysis and choosing between alternative polytomous IRT models using Bayesian model comparison criteria

机译:贝叶斯模型比较标准互相多色IRT模型的敏感性分析与选择

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Polytomous Item Response Theory (IRT) models are used by specialists to score assessments and questionnaires that have items with multiple response categories. In this article, we study the performance of five model comparison criteria for comparing fit of the graded response and generalized partial credit models using the same dataset when the choice between the two is unclear. Simulation study is conducted to analyze the sensitivity of priors and compare the performance of the criteria using the No-U-Turn Sampler algorithm, under a Bayesian approach. The results were used to select a model for an application in mental health data.
机译:专家使用多种物品响应理论(IRT)模型来得分具有多个响应类别的项目的评估和问卷。在本文中,我们研究了五个模型比较标准的性能,用于比较分级响应和广义部分信用模型的拟合,当两者之间的选择不清楚时,使用相同的数据集。进行仿真研究以分析前沿的敏感性,并使用No-U-Turn采样器算法在贝叶斯方法下比较标准的性能。结果用于选择心理健康数据中申请的模型。

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