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Item fit statistics for Rasch analysis: can we trust them?

机译:Rasch分析的项目适合统计数据:我们可以相信它们吗?

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Aim To compare fit statistics for the Rasch model based on estimates of unconditional or conditional response probabilities. Background Using person estimates to calculate fit statistics can lead to problems because the person estimates are biased. Conditional response probabilities given the total person score could be used instead. Methods Data sets are simulated which fit the Rasch model. Type I error rates are calculated and the distributions of the fit statistics are compared with the assumed normal or chi-square distribution. Parametric bootstrap is used to further study the distributions of the fit statistics. Results Type I error rates for unconditional chi-square statistics are larger than expected even for moderate sample sizes. The conditional chi-square statistics maintain the significance level. Unconditional outfit and infit statistics have asymmetric distributions with means slighly below 1. Conditional outfit and infit statistics have reduced Type I error rates. Conclusions Conditional residuals should be used. If only unconditional residuals are available parametric bootstrapping is recommended to calculate valid p -values. Bootstrapping is also necessary for conditional outfit statistics. For conditional infit statistics the adjusted rule-of-thumb critical values look useful.
机译:旨在基于无条件或条件反应概率的估计比较Rasch模型的拟合统计数据。背景技术使用人员估计计算拟合统计数据可能会导致问题,因为该人估计有偏见。可以使用条件响应概率,而是可以使用总人分数。方法模拟数据集,其适合RASCH模型。计算I型错误率,并将拟合统计的分布与假定的正常或Chi-Square分布进行比较。参数引导程序用于进一步研究拟合统计的分布。结果I型无条件Chi-Square统计的错误率甚至大于预期,即使对于适度的样本尺寸也要大于预期。条件的Chi-Square统计数据保持重要性水平。无条件的装备和infit统计数据具有不对称的分布,手段略微低于1.条件装备和infit统计数据的I型错误率。结论应使用条件残留物。如果只有无条件残差是可用的参数举例,建议计算有效的P -Values。有条件的ovefit统计数据也需要引导。有关条件infit统计信息,调整后的拇指临界值看起来很有用。

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