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DART: De-Anonymization of personal gazetteers through social trajectories

机译:飞镖:通过社会轨迹脱离个人公鸡的匿名化

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摘要

The interest in trajectory data has sensibly increased since the widespread of mobile devices. Simple clustering techniques allow the recognition of personal gazetteers, i.e., the set of main points of interest (also called stay points) of each user, together with the list of time instants of each visit. Due to their sensitiveness, personal gazetteers are usually anonymized, but their inherent unique patterns expose them to the risk of being deanonymized. In particular, social trajectories (i.e., those obtained from social networks, which associate statuses and check-ins to spatial and temporal locations) can be leveraged by an adversary to de-anonymize personal gazetteers. In this paper, we propose DART as an innovative approach to effectively de-anonymize personal gazetteers through social trajectories, even in the absence of a temporal alignment between the two sources (i.e., they have been collected over different periods). DART relies on a big data implementation, guaranteeing the scalability to large volumes of data. We evaluate our approach on two real-world datasets and we compare it with recent state-of-the-art algorithms to verify its effectiveness.
机译:由于移动设备的广泛普及以来,对轨迹数据的兴趣明智地增加。简单的聚类技术允许识别每个用户的每个用户的兴趣点(也称为停留点)的识别,以及每次访问的时间阶段列表。由于他们的敏感性,个人公鸡通常是匿名的,但他们固有的独特模式将它们暴露在丹奇的风险中。特别是,社会轨迹(即,从社交网络获得的那些,将状态和签到空间和时间位置相关联的人)可以通过对手匿名匿名的个人公鸡来利用。在本文中,我们将Dart作为一种创新的方法,以通过社会轨迹有效地将个人公鸡与社会轨迹一起匿名匿名,即使在没有两个来源之间的时间对齐(即,它们在不同时期收集)。 Dart依赖于大数据实现,保证了大量数据的可扩展性。我们在两个真实的数据集中评估我们的方法,我们将其与最近的最先进的算法进行比较,以验证其有效性。

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