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ARC: Adaptive Reputation based Clustering Against Spectrum Sensing Data Falsification Attacks

机译:ARC:针对频谱感应数据篡改攻击的基于自适应信誉的聚类

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摘要

IEEE 802.22 is the first standard based on the concept of cognitive radio. It recommends collaborative spectrum sensing to avoid the unreliability of individual spectrum sensing while detecting primary user signals. However, it opens an opportunity for attackers to exploit the decision making process by sending false reports. In this paper, we address security issues regarding distributed node sensing in the 802.22 standard and discuss how attackers can modify or manipulate their sensing result independently or collaboratively. This problem is commonly known as spectrum sensing data falsification (SSDF) attack or Byzantine attack. To counter the different attacking strategies, we propose a reputation based clustering algorithm that does not require prior knowledge of attacker distribution or complete identification of malicious users. We provide an extensive probabilistic analysis of the performance of the algorithm. We compare the performance of our algorithm against existing approaches across a wide range of attacking scenarios. Our proposed algorithm displays a significantly reduced error rate in decision making in comparison to current methods. It also identifies a large portion of the attacking nodes and greatly minimizes the false detection rate of honest nodes.
机译:IEEE 802.22是基于认知无线电概念的第一个标准。它建议使用协作频谱感测,以避免在检测主要用户信号时单个频谱感测的不可靠性。但是,这为攻击者提供了通过发送虚假报告来利用决策过程的机会。在本文中,我们解决了802.22标准中有关分布式节点感测的安全性问题,并讨论了攻击者如何独立或协作修改或操纵其感测结果。此问题通常被称为频谱感知数据篡改(SSDF)攻击或拜占庭攻击。为了应对不同的攻击策略,我们提出了一种基于信誉的聚类算法,该算法不需要事先知道攻击者的分布或完全识别恶意用户。我们提供了算法性能的广泛概率分析。我们将我们的算法的性能与各种攻击场景下的现有方法进行了比较。与当前方法相比,我们提出的算法在决策中显示出大大降低的错误率。它还可以识别大部分攻击节点,并最大程度地减少诚实节点的错误检测率。

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