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Advantages of Imputation vs. Data Swapping for Statistical Disclosure Control

机译:统计披露控制中归因与数据交换的优势

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Data swapping is an approach long-used by public agencies to protect respondent confidentiality in which values of some variables are swapped with similar records for a small portion of respondents. Synthetic data is a newer method in which many if not all values are replaced with multiple imputations. Synthetic data can be difficult to implement for complex data; however, when the portion of data replaced is similar to data swapping, it becomes simple to implement using publicly available software. This paper describes how this simplification of synthetic data can be used to provide a better balance of data quality and disclosure protection compared to data swapping. This is illustrated via an empirical comparison using data from the Survey of Earned Doctorates.
机译:数据交换是公共机构长期使用的方法,以保护受访者机密性,其中一些变量的值与一小部分受访者交换了类似的记录。合成数据是一种较新的方法,其中许多如果不是所有值都被多重避免替换。为复杂数据难以实现合成数据;但是,当替换的数据部分类似于数据交换时,使用公共可用软件实现简单。本文介绍了如何使用这种合成数据的简化,以便与数据交换相比提供更好的数据质量和披露保护的平衡。这是通过使用来自奖金博士学位调查的数据进行实证比较来说明。

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