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首页> 外文期刊>The American statistician >Iterative Multiple Imputation: A Framework to Determine the Number of Imputed Datasets
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Iterative Multiple Imputation: A Framework to Determine the Number of Imputed Datasets

机译:迭代多重估算:确定避障数据集数量的框架

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摘要

We consider multiple imputation as a procedure iterating over a set of imputed datasets. Based on an appropriate stopping rule the number of imputed datasets is determined. Simulations and real-data analyses indicate that the sufficient number of imputed datasets may in some cases be substantially larger than the very small numbers that are usually recommended. For an easier use in various applications, the proposed method is implemented in the R package imi.
机译:我们将多个归纳视为迭代一组潜在的数据集的过程。基于适当的停止规则,确定了避障数据集的数量。模拟和实数据分析表明,在某些情况下,足够数量的避障数据集可以基本上大于通常推荐的非常小的数字。为了更容易在各种应用程序中使用,所提出的方法是在R包IMI中实现的。

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