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A novel approach to achieving ??-anonymization for social network privacy preservation based on vertex connectivity

机译:一种基于顶点连接性实现社交网络隐私保护的??匿名化的新方法

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摘要

Social networks have been widely used, providing people with great convenience but also yielding potential risk of privacy disclosure. To prevent attacks based on background information or query that may expose users' privacy, we propose a method to achieve k-anonymization for network graphs. The concept of similarity matrix and that of the distance between a vertex and a cluster are defined based on vertex connectivity. On this basis, we present a clustering-based graph partitioning algorithm to obtain the K-anonymized graph of a certain network graph. Simulation experiments are conducted to analyze and verify the effectiveness of our algorithm.
机译:社交网络已被广泛使用,为人们提供了极大的便利,但也带来了隐私泄露的潜在风险。为了防止基于可能泄露用户隐私的背景信息或查询的攻击,我们提出了一种实现网络图k匿名化的方法。基于顶点连通性定义相似度矩阵的概念以及顶点与簇之间的距离的概念。在此基础上,我们提出了一种基于聚类的图划分算法,以获取某个网络图的K匿名图。进行了仿真实验,以分析和验证我们算法的有效性。

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