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首页> 外文期刊>Communications in Statistics. A, Theory and Methods >Analysis of Local Dependence and Multidimensionality in Graphical Loglinear Rasch Models
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Analysis of Local Dependence and Multidimensionality in Graphical Loglinear Rasch Models

机译:图形记录Loglinear Rasch模型中局部依赖与多元化的分析

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This paper proposes a procedure for analysis of multidimensionality in graphical loglinear Rasch models. The procedure combines exploratory techniques based on analysis of local dependence by coefficients measuring conditional item association and confirmatory techniques fitting and testing the adequacy of graphical loglinear Rasch models. The course of action is motivated by the observation that evidence of conditional item association suggesting multidimensionality may be generated by very different phenomena having nothing to do with multidimensionality. This means that an analysis of conditional association is never enough in itself: additional procedures are required to distinguish between multidimensionality and other causes of local dependence. The procedure for analysis of conditional item association may be regarded as a variation of well-known procedures for analysis of local dependence. Compared to these methods the techniques for the family of Rasch models described in this paper eliminate the bias inherent in conventional methods for analysis of conditional item association.
机译:本文提出了一种分析图形记录Loglinear Rasch模型的多利率的程序。该过程基于分析局部依赖的分析,这些方法通过系数测量条件项目关联和确认技术拟合和测试图形记录线性Rasch模型的充分性的分析。该课程是通过观察结果的推动,即有条件物品协会的证据表明多利用的现象可以产生与多数无关的现象。这意味着对条件关联的分析本身永远不会足够:需要额外的程序来区分局部依赖的其他原因。条件项目关联的分析程序可以被认为是众所周知的局部依赖性程序的变化。与这些方法相比,本文中描述的RASCH模型系列的技术消除了传统方法中固有的偏差,用于分析条件项目协会。

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