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A Fully Conditional Specification Approach to Multilevel Imputation of Categorical and Continuous Variables

机译:完全条件规范的方法,用于分类和连续变量的多级插补

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Specialized imputation routines for multilevel data are widely available in software packages, but these methods are generally not equipped to handle a wide range of complexities that are typical of behavioral science data. In particular, existing imputation schemes differ in their ability to handle random slopes, categorical variables, differential relations at Level-1 and Level-2, and incomplete Level-2 variables. Given the limitations of existing imputation tools, the purpose of this manuscript is to describe a flexible imputation approach that can accommodate a diverse set of 2-level analysis problems that includes any of the aforementioned features. The procedure employs a fully conditional specification (also known as chained equations) approach with a latent variable formulation for handling incomplete categorical variables. Computer simulations suggest that the proposed procedure works quite well, with trivial biases in most cases. We provide a software program that implements the imputation strategy, and we use an artificial data set to illustrate its use.
机译:用于多级数据的专门插入程序在软件包中广泛使用,但是这些方法通常没有能力处理典型的行为科学数据的广泛复杂性。特别是,现有的插补方案在处理随机斜率,分类变量,级别1和级别2的差异关系以及不完整级别2变量的能力上有所不同。鉴于现有的插补工具的局限性,本手稿的目的是描述一种灵活的插补方法,该方法可以容纳一组不同的2级分析问题,其中包括上述任何功能。该过程采用完全条件的规范(也称为链式方程式)方法,其潜在变量公式用于处理不完整的分类变量。计算机模拟表明,在大多数情况下,提出的程序效果很好,并且存在微不足道的偏见。我们提供了实现归纳策略的软件程序,并使用人造数据集来说明其使用。

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