Robust Sybil Attack Detection in Vehicular Networks
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The broadcast nature of the vehicular networks makes them vulnerable to Sybil attacks, where an attacker illegitimately claims multiple identities and undermines the networks. We propose a non-cryptographic attack detection approach that is based on signal-level wireless measurements. Our approach exploits the spatial signal variation of wireless channels to detect Sybil attacks. The performance of our approach is verified via extensive simulations and DSRC-based experiments in a real vehicular network. The results show that we achieve the detection rates of 95% in simulations and 99% in real-world experiments. The proposed approach can be deployed on the existing systems without a need for additional hardware or infrastructure.