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Privacy-Preserving Distributed Association Rule Mining Based on the Secret Sharing Technique

机译:基于秘密共享技术的隐私保留分布式关联规则挖掘

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Due to privacy law and motivation of business interests, privacy is concerned and has become an important issue in data mining. This paper explores the issue of privacy-preserving distributed association rule mining in vertically partitioned data among multiple parties, and proposes a collusion-resistant algorithm of distributed association rule mining based on the Shamir's secret sharing technique, which prevents effectively the collusive behaviors and conducts the computations across the parties without compromising their data privacy. Additionally, analyses with regard to the security, efficiency and correctness of the proposed algorithm are given.
机译:由于私隐法和业务利益的动机,隐私感到关注,已成为数据挖掘的重要问题。本文探讨了在多方之间垂直分区数据中的隐私保留分布式关联规则挖掘问题,并提出了一种基于Shamir秘密共享技术的分布式关联规则挖掘的抵抗算法,这防止了贯穿契合行为并进行了在不影响其数据隐私的情况下计算各方的计算。另外,给出了所提出的算法的安全性,效率和正确性的分析。

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