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Splitting anonymization: a novel privacy-preserving approach of social network

机译:拆分匿名:社交网络的一种新的隐私保护方法

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摘要

Large amount of personal social information is collected and published due to the rapid development of social network technologies and applications, and thus, it is quite essential to take privacy preservation and prevent sensitive information leakage. Most of current anonymizing techniques focus on the preservation to privacies, but cannot provide accurate answers to utility queries even at a high price. To solve the problem, a novel anonymizing approach, called splitting anonymization, is introduced in this paper to point against the contradiction of privacy and utility. This approach provides a high-level preservation to the privacy of social network data that is unknown to attackers, which avoids the low utility caused by the enforced noises on knowledge that is already known to the attackers. Social network processed by splitting anonymization can refuse any direct attack, and these strategies are also safe enough to indirect attacks which are usually more dangerous than direct attacks. Finally, strict theoretical analysis and large amount of evaluation results based on real data sets verified the design of this paper.
机译:由于社交网络技术和应用的快速发展,大量的个人社交信息被收集和发布,因此,保护​​隐私和防止敏感信息泄漏是非常重要的。当前大多数匿名技术都集中在隐私保护上,但是即使价格高昂,也无法为实用程序查询提供准确的答案。为了解决这个问题,本文提出了一种新的匿名化方法,称为拆分匿名化,以解决隐私和实用性之间的矛盾。这种方法可以高度保护攻击者未知的社交网络数据的隐私,从而避免了由于攻击者已经知道的知识上的强制性噪声而导致的效用低下。通过拆分匿名处理的社交网络可以拒绝任何直接攻击,并且这些策略也足以抵御通常比直接攻击更为危险的间接攻击。最后,严格的理论分析和大量基于真实数据集的评估结果验证了本文的设计。

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