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Parameter Recovery in Multidimensional Item Response Theory ModelsUnder Complexity and Nonnormality

机译:多维项目响应理论模型中的参数恢复在复杂性和非常态下

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摘要

Information about the psychometric properties of items can be highly useful in assessment development, for example, in item response theory (IRT) applications and computerized adaptive testing. Although literature on parameter recovery in unidimensional IRT abounds, less is known about parameter recovery in multidimensional IRT (MIRT), notably when tests exhibit complex structures or when latent traits are nonnormal. The current simulation study focuses on investigation of the effects of complex item structures and the shape of examinees’ latent trait distributions on item parameter recovery in compensatory MIRT models for dichotomous items. Outcome variables included bias and root mean square error. Results indicated that when latent traits were skewed, item parameter recovery was generally adversely impacted. In addition, the presence of complexity contributed to decreases in the precision of parameter recovery, particularly for discrimination parameters along one dimension when at least one latent trait was generated as skewed.
机译:有关项目心理测量特性的信息在评估开发中非常有用,例如,在项目响应理论(IRT)应用程序和计算机化自适应测试中。尽管关于一维IRT中参数恢复的文献很多,但对于多维IRT(MIRT)中的参数恢复知之甚少,特别是当测试显示复杂的结构或潜在特征不正常时。当前的模拟研究重点在于调查二分项目的补偿性MIRT模型中复杂项目结构和应试者的潜在特征分布形状对项目参数恢复的影响。结果变量包括偏倚和均方根误差。结果表明,当潜在特征偏斜时,项目参数恢复通常会受到不利影响。另外,复杂性的存在导致参数恢复的精度降低,尤其是当至少一个潜在特征被歪斜地产生时沿一维辨别参数时。

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