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Differential privacy-based data de-identification protection and risk evaluation system

机译:基于差异隐私的数据去身份保护和风险评估系统

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As more and more technologies to store and analyze massive amount of data become available, it is extremely important to make privacy-sensitive data de-identified so that further analysis can be conducted by different parties. For example, data needs to go through data de-identification process before being transferred to institutes for further value added analysis. As such, privacy protection issues associated with the release of data and data mining have become a popular field of study in the domain of big data. As a strict and verifiable definition of privacy, differential privacy has attracted noteworthy attention and widespread research in recent years. Nevertheless, differential privacy is not practical for most applications due to its performance of synthetic dataset generation for data query. Moreover, the definition of data protection by randomized noise in native differential privacy is abstract to users. Therefore, we design a pragmatic DP-based data de-identification protection and risk of data disclosure estimation system, in which a DP-based noise addition mechanism is applied to generate synthetic datasets. Furthermore, the risk of data disclosure to these synthetic datasets can be evaluated before releasing to buyers/consumers.
机译:随着越来越多的用于存储和分析大量数据的技术的出现,取消对隐私敏感的数据的身份识别非常重要,这样不同的各方可以进行进一步的分析。例如,数据需要先经过数据去识别过程,然后再转移到机构进行进一步的增值分析。因此,与数据发布和数据挖掘相关的隐私保护问题已成为大数据领域的热门研究领域。作为对隐私的严格和可验证的定义,近年来,差异隐私引起了广泛的关注和广泛的研究。然而,由于差异隐私的综合性能,可用于大多数数据查询,因此对于大多数应用程序来说并不实用。而且,对本机差分隐私中的随机噪声进行数据保护的定义对用户来说是抽象的。因此,我们设计了一种实用的基于DP的数据去标识保护和数据泄露风险估计系统,其中基于DP的噪声添加机制被应用于生成综合数据集。此外,可以在发布给购买者/消费者之前,评估向这些综合数据集公开数据的风险。

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