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A privacy-aware monitoring algorithm for moving k-nearest neighbor queries in road networks

机译:用于在路网中移动k最近邻查询的隐私感知监视算法

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摘要

Location privacy is a major obstacle in the ubiquitous deployment of mobile and pervasive computing services. In this study, we present a new approach for preserving the trajectory privacy of moving (k)-nearest neighbor (M(k)NN) queries in road networks. Several location anonymization algorithms have been proposed for providing location privacy to users traveling on a road network. These algorithms focus primarily on the location anonymization of snapshot queries. Indeed, users move freely and arbitrarily, and thus query results provided to them soon become invalid as their locations change. To refresh the query result, each user must therefore periodically contact the location-based service, enabling attackers to identify and track the user easily. In addition, frequent location updates for the user may incur severe computational and communication costs. We address these issues by proposing a privacy-aware monitoring algorithm, called PAMA, for preserving the trajectory privacy of M(k)NN queries in road networks. Our simulation results show that PAMA significantly outperforms conventional algorithms in terms of both security and performance.
机译:位置隐私是普遍部署移动和普及计算服务的主要障碍。在这项研究中,我们提出了一种在道路网络中保留移动(k)-最近邻居(M(k)NN)查询的轨迹隐私的新方法。已经提出了几种位置匿名算法,用于向在道路网络上旅行的用户提供位置隐私。这些算法主要关注快照查询的位置匿名化。实际上,用户可以自由地任意移动,因此,随着用户位置的改变,提供给他们的查询结果很快就会变得无效。因此,要刷新查询结果,每个用户必须定期联系基于位置的服务,从而使攻击者能够轻松地识别和跟踪用户。另外,用户的频繁位置更新可能招致严重的计算和通信成本。我们通过提出一种称为PAMA的隐私感知监视算法来解决这些问题,该算法用于保留道路网络中M(k)NN查询的轨迹隐私。我们的仿真结果表明,就安全性和性能而言,PAMA明显优于传统算法。

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