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Anonymizing approach to resist label-neighborhood attacks in dynamic releases of social networks

机译:在社交网络动态发布中抵抗标签邻居攻击的匿名方法

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Data collection by social networking applications offers many opportunities for mining information, which provides a better understanding of social structures and their dynamic structures. Anonymization of social networks before they are published or shared is particularly important, since social network data usually contain much sensitive information on individuals. In this paper, we address the privacy problems of dynamic releases of social networks. We re-define the label-neighborhood attack model in dynamic social network releases. An adversary can use one-hop neighbor's network structure and label as background knowledge to identity the victim to learn more sensitive information. We propose a dynamic-l-diversity anonymized method to resist attacks. Experiments show that the proposed approach can retain much of the characteristics of the network while providing high utility.
机译:社交网络应用程序收集的数据为挖掘信息提供了许多机会,从而可以更好地理解社交结构及其动态结构。在社交网络发布或共享之前,匿名化尤为重要,因为社交网络数据通常包含许多有关个人的敏感信息。在本文中,我们解决了社交网络动态发布的隐私问题。我们在动态社交网络版本中重新定义标签邻居攻击模型。攻击者可以使用一跳邻居的网络结构并将其标记为背景知识,以标识受害者以了解更多敏感信息。我们提出了一种动态l多样性匿名方法来抵抗攻击。实验表明,该方法可以在保持较高实用性的同时保留网络的许多特性。

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