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首页> 外文期刊>Psychometrika >A Nonparametric Multidimensional Latent Class IRT Model in a Bayesian Framework
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A Nonparametric Multidimensional Latent Class IRT Model in a Bayesian Framework

机译:贝叶斯框架中的一个非参数多维潜在IRT模型

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AbstractWe propose a nonparametric item response theory model for dichotomously-scored items in a Bayesian framework. The model is based on a latent class (LC) formulation, and it is multidimensional, with dimensions corresponding to a partition of the items in homogenous groups that are specified on the basis of inequality constraints among the conditional success probabilities given the latent class. Moreover, an innovative system of prior distributions is proposed following the encompassing approach, in which the largest model is the unconstrained LC model. A reversible-jump type algorithm is described for sampling from the joint posterior distribution of the model parameters of the encompassing model. By suitably post-processing its output, we then make inference on the number of dimensions (i.e., number of groups of items measuring the same latent trait) and we cluster items according to the dimensions when unidimensionality is violated. The approach is illustrated by two examples on simulated data and two applications based on educational and quality-of-life data.]]>
机译:<![cdata [ <标题>抽象 ara id =“par1”>我们提出了二分法的非参数项目响应理论模型 - 在贝叶斯框架中得分。该模型基于潜在的类(LC)制剂,并且它是多维的,其尺寸对应于在潜在类的条件成功概率的不平等约束的基础上指定的均质组中的项目的分区。此外,在包围的方法之后提出了一种现有分布的创新系统,其中最大的模型是无约束的LC模型。描述了一种可逆跳跃式算法,用于从包含模型的模型参数的联合后部分布采样。通过适当地处理其输出,然后我们对维度的数量(即,测量相同潜在特征的物品数量的数量),并且我们根据违反自由度的尺寸的尺寸进行群集项目。该方法是通过模拟数据的两个示例和基于教育和生活质量数据的应用程序来说明。 ]]>

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