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A family of methods for statistical disclosure control

机译:一整套统计披露控制方法

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摘要

Statistical disclosure control (SDC) is a balancing act between mandatory data protection and the comprehensible demand from researchers for access to original data. In this paper, a family of methods is defined to 'mask' sensitive variables before data files can be released. In the first step, the variable to be masked is 'cloned' (C). Then, the duplicated variable as a whole or just a part of it is 'suppressed' (S). The masking procedure's third step 'imputes' (I) data for these artificial missings. Then, the original variable can be deleted and its masked substitute has to serve as the basis for the analysis of data. The idea of this general 'CSI framework' is to open the wide field of imputation methods for SDC. The method applied in the I-step can make use of available auxiliary variables including the original variable. Different members of this family of methods delivering variance estimators are discussed in some detail. Furthermore, a simulation study analyzes various methods belonging to the family with respect to both, the quality of parameter estimation and privacy protection. Based on the results obtained, recommendations are formulated for different estimation tasks.
机译:统计公开控制(SDC)是强制性数据保护与研究人员对原始数据访问的可理解需求之间的一种平衡行为。在本文中,定义了一系列方法来在释放数据文件之前“屏蔽”敏感变量。第一步,要屏蔽的变量是“克隆的”(C)。然后,整个或部分重复变量被“抑制”(S)。掩盖程序的第三步为这些人为缺失“估计”(I)数据。然后,可以删除原始变量,并且必须使用其掩盖的替代作为数据分析的基础。这个通用的“ CSI框架”的思想是为SDC打开插补方法的广阔领域。 I步中应用的方法可以利用包括原始变量在内的可用辅助变量。传递方差估计量的该方法系列的不同成员将进行详细讨论。此外,一项仿真研究从参数估计的质量和隐私保护两个方面分析了该家族的各种方法。根据获得的结果,为不同的估算任务制定建议。

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