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Privacy-Awareness of Distributed Data Clustering Algorithms Revisited

机译:再谈分布式数据聚类算法的隐私意识

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Several privacy measures have been proposed in the privacy-preserving data mining literature. However, privacy measures either assume centralized data source or that no insider is going to try to infer some information. This paper presents distributed privacy measures that take into account collusion attacks and point level breaches for distributed data clustering. An analysis of representative distributed data clustering algorithms show that collusion is an important source of privacy issues and that the analyzed algorithms exhibit different vulnerabilities to collusion groups.
机译:在保护隐私的数据挖掘文献中已经提出了几种保护隐私的措施。但是,隐私权措施要么假定集中式数据源,要么没有内部人员将试图推断某些信息。本文提出了分布式隐私措施,该措施考虑了针对分布式数据集群的合谋攻击和点级漏洞。对代表性的分布式数据聚类算法的分析表明,合谋是隐私问题的重要来源,并且所分析的算法对合谋群体表现出不同的脆弱性。

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