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Robustness against Byzantine Failures in Distributed Spectrum Sensing

机译:分布式频谱传感中针对拜占庭式故障的稳健性

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Distributed Spectrum Sensing (DSS) enables a Cognitive Radio (CR) network to reliably detect licensed users and avoid causing interference to licensed communications. The data fusion technique is a key component of DSS. We discuss the Byzantine Failure problem in the context of data fusion, which may be caused by either malfunctioning sensing terminals or Spectrum Sensing Data Falsification (SSDF) attacks. In either case, incorrect spectrum sensing data is reported to a data collector which can lead to the distortion of data fusion outputs. We investigate various data fusion techniques, focusing on their robustness against Byzantine Failures. In contrast to existing data fusion techniques that use a fixed number of samples, we propose a new technique that uses a variable number of samples. The proposed technique, which we call Weighted Sequential Probability Ratio Test (WSPRT), introduces a reputation-based mechanism to the Sequential Probability Ratio Test (SPRT). We evaluate WSPRT by comparing it with a variety of data fusion techniques under various conditions. We also discuss practical issues that need to be considered when applying the fusion techniques to CR networks. Our simulation results indicate that WSPRT is the most robust against Byzantine Failures among the data fusion techniques that were considered.
机译:分布式频谱感知(DSS)使认知无线电(CR)网络能够可靠地检测许可用户,并避免对许可通信造成干扰。数据融合技术是DSS的关键组成部分。我们在数据融合的背景下讨论了拜占庭式故障问题,这可能是由于感应终端故障或频谱感应数据篡改(SSDF)攻击引起的。在这两种情况下,都会将不正确的频谱感测数据报告给数据收集器,这可能导致数据融合输出的失真。我们研究各种数据融合技术,重点是针对拜占庭式故障的稳健性。与使用固定数量样本的现有数据融合技术相比,我们提出了使用可变样本数量的新技术。所提出的技术(我们称为加权顺序概率比测试(WSPRT))将基于信誉的机制引入了顺序概率比测试(SPRT)。我们通过将WSPRT与各种条件下的多种数据融合技术进行比较来评估WSPRT。我们还将讨论将融合技术应用于CR网络时需要考虑的实际问题。我们的仿真结果表明,在考虑的数据融合技术中,WSPRT是针对拜占庭式故障最强大的解决方案。

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