Inferring social ties in academic networks using short-range wireless communications

Igor Bilogrevic, Kévin Huguenin, Murtuza Jadliwala, Florent Lopez, J. Hubaux, Philip Ginzboorg, Valtteri Niemi
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引用次数: 26

Abstract

WiFi base stations are increasingly deployed in both public spaces and private companies, and the increase in their density poses a significant threat to the privacy of connected users. Prior studies have provided evidence that it is possible to infer the social ties of users from their location and co-location traces but they lack one important component: the comparison of the inference accuracy between an internal attacker (e.g., a curious application running on a mobile device) and a realistic external eavesdropper in the same field trial. In this paper, we experimentally show that such an eavesdropper is able to infer the type of social relationships between mobile users better than an internal attacker. Moreover, our results indicate that by exploiting the underlying social community structure of mobile users, the accuracy of the inference attacks doubles. Based on our findings, we propose countermeasures to help users protect their privacy against eavesdroppers.
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利用短距离无线通信推断学术网络中的社会关系
WiFi基站越来越多地部署在公共场所和私人公司,其密度的增加对连接用户的隐私构成了重大威胁。先前的研究已经提供了证据,表明可以从用户的位置和共定位痕迹推断用户的社会关系,但它们缺乏一个重要的组成部分:在同一现场试验中,内部攻击者(例如,在移动设备上运行的奇怪应用程序)和实际的外部窃听者之间的推断准确性比较。在本文中,我们通过实验证明,这种窃听者能够比内部攻击者更好地推断移动用户之间的社会关系类型。此外,我们的研究结果表明,通过利用移动用户的潜在社会社区结构,推理攻击的准确性提高了一倍。根据我们的研究结果,我们提出了帮助用户保护隐私免受窃听的对策。
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