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Sybil Attack Resilient Traffic Networks: A Physics-Based Trust Propagation Approach

机译:Sybil攻击弹性交通网络:一种基于物理的信任传播方法

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We study a crowdsourcing aided road traffic estimation setup, where a fraction of users (vehicles) are malicious, and report wrong sensory information, or even worse, report the presence of Sybil (ghost) vehicles that do not physically exist. The motivation for such attacks lies in the possibility of creating a "virtual" congestion that can influence routing algorithms, leading to "actual" congestion and chaos. We propose a Sybil attack-resilient traffic estimation and routing algorithm that is resilient against such attacks. In particular, our algorithm leverages noisy information from legacy sensing infrastructure, along with the dynamics and proximity graph of vehicles inferred from crowdsourced data. Furthermore, the scalability of our algorithm is based on efficient Boolean Satisfiability (SAT) solvers. We validated our algorithm using real traffic data from the Italian city of Bologna. Our algorithm led to a significant reduction in average travel time in the presence of Sybil attacks, including cases where the travel time was reduced from about an hour to a few minutes.
机译:我们研究了一种众包辅助的道路交通估计设置,其中一部分用户(车辆)是恶意的,并且报告错误的感官信息,甚至更糟的是,报告存在实际上不存在的Sybil(幽灵)车辆。进行此类攻击的动机在于可能会产生“虚拟”拥塞,从而影响路由算法,从而导致“实际”拥塞和混乱。我们提出了一种能够抵御此类攻击的Sybil弹性攻击流量估算和路由算法。特别是,我们的算法利用了来自传统传感基础设施的嘈杂信息,以及从众包数据推断出的车辆的动力学和接近度图。此外,我们算法的可伸缩性基于有效的布尔可满足性(SAT)求解器。我们使用来自意大利博洛尼亚市的真实交通数据验证了我们的算法。我们的算法在存在Sybil攻击的情况下大大减少了平均旅行时间,包括旅行时间从大约一小时减少到几分钟的情况。

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