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Goodness-of-Fit Assessment of Item Response Theory Models

机译:项目反应理论模型的拟合优度评估

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The article provides an overview of goodness-of-fit assessment methods for item response theory (IRT) models. It is now possible to obtain accurate p-values of the overall fit of the model if bivariate information statistics are used. Several alternative approaches are described. As the validity of inferences drawn on the fitted model depends on the magnitude of the misfit, if the model is rejected it is necessary to assess the goodness of approximation. With this aim in mind, a class of root mean squared error of approximation (RMSEA) is described, which makes it possible to test whether the model misfit is below a specific cutoff value. Also, regardless of the outcome of the overall goodness-of-fit assessment, a piece-wise assessment of fit should be performed to detect parts of the model whose fit can be improved. A number of statistics for this purpose are described, including a z statistic for residual means, a mean-and-variance correction to Pearson's X2 statistic applied to each bivariate subtable separately, and the use of z statistics for residual cross-products.
机译:本文概述了项目响应理论(IRT)模型的拟合优度评估方法。如果使用双变量信息统计,则现在可以获得模型整体拟合的准确p值。描述了几种替代方法。由于在拟合模型上得出的推论的有效性取决于失配的大小,因此如果模型被拒绝,则有必要评估近似的优度。考虑到这一目标,将描述一类均方根近似平方误差(RMSEA),这使得可以测试模型失配是否低于特定的临界值。同样,无论整体拟合优度评估的结果如何,都应进行拟合的分段评估,以检测模型中可以改善拟合度的部分。描述了许多用于此目的的统计量,包括用于残差均值的z统计量,分别应用于每个双变量子表的对Pearson X2统计量的均方差校正以及将z统计量用于残差乘积。

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