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Multidimensional Item Response Theory Models with Collateral Information as Poisson Regression Models

机译:具有抵押信息的多维项目响应理论模型为Poisson回归模型

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摘要

Multiple choice items on tests and Likert items on surveys are ubiquitous in educational, social and behavioral science research; however, methods for analyzing of such data can be problematic. Multidimensional item response theory models are proposed that yield structured Poisson regression models for the joint distribution of responses to items. The methodology presented here extends the approach described in Anderson, Verkuilen, and Peyton (2010) that used fully conditionally specified multinomial logistic regression models as item response functions. In this paper, covariates are added as predictors of the latent variables along with covariates as predictors of location parameters. Furthermore, the models presented here incorporate ordinal information of the response options thus allowing an empirical examination of assumptions regarding the ordering and the estimation of optimal scoring of the response options. To illustrate the methodology and flexibility of the models, data from a study on aggression in middle school (Espelage, Holt, and Henkel 2004) is analyzed. The models are fit to data using SAS.
机译:在教育,社会和行为科学研究中,测试中的多项选择项和调查中的李克特项普遍存在。但是,用于分析此类数据的方法可能会出现问题。提出了多维项目响应理论模型,该模型产生了结构化的泊松回归模型,用于对项目响应的联合分布。此处介绍的方法扩展了在Anderson,Verkuilen和Peyton(2010)中描述的方法,该方法使用完全有条件指定的多项式Lo​​gistic回归模型作为项目响应函数。在本文中,将协变量添加为潜变量的预测变量,同时将协变量添加为位置参数的预测变量。此外,此处介绍的模型结合了响应选项的顺序信息,从而允许对有关响应选项的排序和最佳评分估计的假设进行经验检查。为了说明模型的方法论和灵活性,我们分析了一项关于中学侵略研究的数据(Espelage,Holt和Henkel 2004)。这些模型适合使用SAS的数据。

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