首页> 外文会议>Proceedings of the 2010 IEEE/IFIP International Conference on Dependable Systems and Networks >Detecting selfish carrier-sense behavior in WiFi networks by passive monitoring
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Detecting selfish carrier-sense behavior in WiFi networks by passive monitoring

机译:通过被动监视检测WiFi网络中的自私载波侦听行为

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With the advent of programmability in radios, it is becoming easier for wireless network nodes to cheat to obtain an unfair share of the bandwidth. In this work we study the widely used 802.11 protocol and present a solution to detect selfish carrier-sensing behavior where a node raises the CCA (clear channel assessment) threshold for carrier-sensing, or simply does not sense carrier (possibly randomly to avoid detection). Our approach is based on detecting any asymmetry in carrier-sense behavior between node pairs and finding multiple such witnesses to raise confidence. The approach is completely passive. It requires deploying multiple sniffers across the network to capture wireless traffic traces. These traces are then analyzed by using a machine learning approach to infer carrier-sense relationships between network nodes. Evaluations using a real testbed as well as ns2 simulation studies demonstrate excellent detection ability. The metric of selfishness used to estimate selfish behaviormatches closely with actual degree of selfishness observed.
机译:随着无线电可编程性的出现,无线网络节点更容易作弊以获得不公平的带宽份额。在这项工作中,我们研究了广泛使用的802.11协议,并提出了一种检测自私的载波侦听行为的解决方案,其中节点提高了载波侦听的CCA(畅通信道评估)阈值,或者根本不侦听载波(可能是随机侦听以避免检测) )。我们的方法基于检测节点对之间的载波侦听行为中的任何不对称性,并找到多个此类证人来提高置信度。该方法是完全被动的。它要求在网络上部署多个嗅探器以捕获无线流量跟踪。然后,使用机器学习方法来分析这些迹线,以推断网络节点之间的载波感知关系。使用真实的测试平台进行的评估以及ns2仿真研究表明,该软件具有出色的检测能力。用于估计自私行为的自私指标与观察到的实际自私程度紧密匹配。

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