首页> 外文期刊>Journal of the Royal Statistical Society. Series A, Statistics in Society >Multiple Imputation For Combining Confidential Data Owned By Two Agencies
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Multiple Imputation For Combining Confidential Data Owned By Two Agencies

机译:用于合并两个机构拥有的机密数据的多重插补

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摘要

Statistical agencies that own different databases on overlapping subjects can benefit greatly from combining their data. These benefits are passed on to secondary data analysts when the combined data are disseminated to the public. Sometimes combining data across agencies or sharing these data with the public is not possible: one or both of these actions may break promises of confidentiality that have been given to data subjects. We describe an approach that is based on two stages of multiple imputation that facilitates data sharing and dissemination under restrictions of confidentiality. We present new inferential methods that properly account for the uncertainty that is caused by the two stages of imputation. We illustrate the approach by using artificial and genuine data.
机译:在重叠的主题上拥有不同数据库的统计机构可以从合并其数据中受益匪浅。当合并的数据向公众传播时,这些好处将传递给二级数据分析人员。有时不可能跨机构合并数据或与公众共享这些数据:这两项措施中的一项或两项都可能违反对数据主体提供保密性的承诺。我们描述了一种基于多重插补两个阶段的方法,该方法可在机密性限制下促进数据共享和分发。我们提出了新的推论方法,这些方法适当地考虑了归因于两个估算阶段的不确定性。我们通过使用人工和真实数据来说明该方法。

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