基于倾向分数的条件分组交换对层定义变量披露限制的研究。

Anna Oganian, Goran Lesaja
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引用次数: 0

摘要

本文提出了一种解决分类变量统计披露限制的方法,我们称之为条件组交换。这种方法适用于设计和地层定义变量,这些变量的交叉分类导致重要群体或亚群体的形成。这些组被认为是重要的,因为从数据分析的角度来看,在其中保留分析特征是可取的。一般来说,数据交换可能相当扭曲([12,18,15]),特别是对于子种群内变量之间的关系,而且对于整体数据。为了减少交换带来的损失,我们建议使用条件概率来选择交换记录,条件概率取决于交换记录的特征。特别是,我们的方法利用倾向得分方法的结果来计算交换概率。实验结果表明,该方法具有良好的实用性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Propensity score based conditional group swapping for disclosure limitation of strata-defining variables.

In this paper we propose a method for statistical disclosure limitation of categorical variables that we call Conditional Group Swapping. This approach is suitable for design and strata-defining variables, the cross-classification of which leads to the formation of important groups or subpopulations. These groups are considered important because from the point of view of data analysis it is desirable to preserve analytical characteristics within them. In general data swapping can be quite distorting ([12, 18, 15]), especially for the relationships between the variables not only within the subpopulations but for the overall data. To reduce the damage incurred by swapping, we propose to choose the records for swapping using conditional probabilities which depend on the characteristics of the exchanged records. In particular, our approach exploits the results of propensity scores methodology for the computation of swapping probabilities. The experimental results presented in the paper show good utility properties of the method.

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