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Transparent Anonymization: Thwarting Adversaries Who Know the Algorithm

机译:透明匿名化:挫败了知道算法的对手

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摘要

Numerous generalization techniques have been proposed for privacy-preserving data publishing. Most existing techniques, however, implicitly assume that the adversary knows little about the anonymization algorithm adopted by the data publisher. Consequently, they cannot guard against privacy attacks that exploit various characteristics of the anonymization mechanism. This article provides a practical solution to this problem. First, we propose an analytical model for evaluating disclosure risks, when an adversary knows everything in the anonymization process, except the sensitive values. Based on this model, we develop a privacy principle, transparent l-diversity, which ensures privacy protection against such powerful adversaries. We identify three algorithms that achieve·transparent l-diversity, and verify their effectiveness and efficiency through extensive experiments with real data.
机译:已经提出了许多用于保护隐私的数据发布的概括技术。但是,大多数现有技术都隐含地假定对手对数据发布者采用的匿名化算法知之甚少。因此,他们无法防范利用匿名机制的各种特征的隐私攻击。本文为该问题提供了一种实用的解决方案。首先,当对手了解匿名过程中除敏感值之外的所有信息时,我们提出了一种评估披露风险的分析模型。在此模型的基础上,我们开发了隐私原则,即透明的l-多样性,可确保针对此类强大对手的隐私保护。我们确定实现透明l多样性的三种算法,并通过对真实数据的大量实验来验证其有效性和效率。

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