
handle: 10446/29127 , 10446/28516 , 20.500.11769/13590 , 20.500.11769/3473
In this paper we focus on a model-based approach to the treatment of missing data due to examinées' nonresponse, in the context of Item Response Theory (IRT). With model-based approach we mean that item nonresponses are to be included in the analysisindeed we assume that nonresponses are caused by a spécifie latent trait, summarizing the response propensity of the examinée. Then, the idea is to postulate the existence of two latent traits: one for response propensity and the other for ability/proficiency. Different models hâve been proposed in the literature. In this paper, a new class of multidimensional IRT models, called Rasch-Rasch models, is introduced. The Rasch-Rasch model belongs to the wider class of Rasch modelsand, as a member of the exponential family, it can be viewed as a generalized linear mixed model. Real and artificial datasets are used to illustrate the characteristics of this new model.
nonresponse, exponential family, Multidimensional Rasch Model, marginal maximum likelihood estimation, Rasch models; nonresponse; multidimensional item response models;, Multidimensional Rasch model; nonignorable missing data; nonresponse; exponential family; marginal maximum likelihood estimation;, nonignorable missing data, [MATH.MATH-ST] Mathematics [math]/Statistics [math.ST]
nonresponse, exponential family, Multidimensional Rasch Model, marginal maximum likelihood estimation, Rasch models; nonresponse; multidimensional item response models;, Multidimensional Rasch model; nonignorable missing data; nonresponse; exponential family; marginal maximum likelihood estimation;, nonignorable missing data, [MATH.MATH-ST] Mathematics [math]/Statistics [math.ST]
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