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A Privacy Preserving Algorithm for Mining Rare Association Rules by Homomorphic Encryption

机译:基于同态加密的稀有关联规则隐私保护算法

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Privacy-preserving data mining have greate significance in the era of big data. The Privacy-preserving condition on rare association rules mining is about the sensitive information regarding participants. Each side have a private dataset, aims to collaboratively find rare association rules on data set like a logically unified frame, but actually composed of distributed private data set. We proposed a new efficient algorithm to discover privacy-preserving rare association rule mining technique. The main principle idea is that with the secure two-party computation theory we employ homomorphic encryption to hide the private information.
机译:在大数据时代,保护隐私的数据挖掘具有重要意义。稀有关联规则挖掘中的隐私保护条件与有关参与者的敏感信息有关。双方都有一个私有数据集,旨在像逻辑上统一的框架一样协作地在数据集上查找稀有关联规则,但实际上是由分布式私有数据集组成的。我们提出了一种新的有效算法来发现保护隐私的稀有关联规则挖掘技术。主要的原理思想是,根据安全的两方计算理论,我们采用同态加密来隐藏私有信息。

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