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Assessing Item-Level Fit for Higher Order Item Response Theory Models

机译:评估高阶项目响应理论模型的项目级别拟合

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摘要

Testing item-level fit is important in scale development to guide item revision/deletion. Many item-level fit indices have been proposed in literature, yet none of them were directly applicable to an important family of models, namely, the higher order item response theory (HO-IRT) models. In this study, chi-square-based fit indices (i.e., Yen’s Q1, McKinley and Mill’s G2, Orlando and Thissen’s S-X2, and S-G2) were extended to HO-IRT models. Their performances are evaluated via simulation studies in terms of false positive rates and correct detection rates. The manipulated factors include test structure (i.e., test length and number of dimensions), sample size, level of correlations among dimensions, and the proportion of misfitting items. For misfitting items, the sources of misfit, including the misfitting item response functions, and misspecifying factor structures were also manipulated. The results from simulation studies demonstrate that the S-G2 is promising for higher order items.
机译:测试项目级别的契合度对于规模开发很重要,可以指导项目的修订/删除。文献中已经提出了许多项目级拟合指数,但是它们都不能直接适用于重要的模型族,即高阶项目响应理论(HO-IRT)模型。在这项研究中,基于卡方的拟合指数(即,Yen的Q1,McKinley和Mill的G 2 ,Orlando和Thissen的SX 2 和SG 2 < / sup>)扩展到HO-IRT模型。通过模拟研究,以假阳性率和正确检出率评估其性能。操纵因素包括测试结构(即测试长度和维数),样本大小,维之间的相关程度以及错配项的比例。对于错配的项目,还对错配的来源(包括错配的项目响应函数)和错误指定的因子结构进行了处理。仿真研究的结果表明,S-G 2 对于高阶项目很有希望。

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