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ANNM: A New Method for Adding Noise Nodes Which are Used Recently in Anonymization Methods in Social Networks

机译:Annm:添加最近在社交网络中匿名化方法使用的噪声节点的新方法

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摘要

One of the main concerns at the time of production or share of information on social networking sites for scientific research and business analysis is privacy. Recently, different models of privacy such as k-anonymity have been created by researchers to avoid detection by using structural information. But still, attackers may be able to access private information by observing the behavior of some nodes in social networks. Current approaches that mainly focus on creating anonymity by edge editing or clustering may significantly change the properties of the social network graph. According to studies of Yuan et al. (IEEE Trans Knowl Data Eng 25(3):633-647, 2013), that makes anonymity with adding noise nodes, we decided to present a new method for adding noise nodes with least changes in main graph attributes. We used betweenness centrality measurement to prioritize the creation of noise nodes and considered the amount of their impact on graph properties. The result of comparing our proposed solution and other related works shows that the structural properties of the original social network graph have had very little change.
机译:在科学研究和业务分析的社交网站生产或份额的主要担忧之一是隐私。最近,研究人员创建了不同的隐私模型,例如k-匿名,以避免使用结构信息检测。但仍然,攻击者可以通过观察社交网络中某些节点的行为来访问私人信息。主要关注边缘编辑或群集创建匿名的目前的方法可以显着改变社交网络图的属性。根据袁等人的研究。 (IEEE Trans Kata Data Eng 25(3):633-647,2013),与添加噪声节点进行匿名,我们决定介绍一种添加主图属性中最小变化的噪声节点的新方法。我们在中心测量之间使用,以优先创建噪声节点并考虑其对图形属性的影响量。比较我们所提出的解决方案和其他相关工程的结果表明,原始社交网络图的结构特性变化很小。

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