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Defense against primary user emulation attackers based on adaptive Bayesian learning automata in cognitive radio networks

机译:基于认知无线电网络的自适应贝叶斯学习自动机的基于Adaptive Bayesian学习自动机的防御

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摘要

Although cognitive radio (CR) provides dynamic spectrum access to combat spectrum scarcity, it imposes some threats to the CR networks. The primary user emulation (PUE) attack is one of these threats in which malicious users try to emulate the primary user signals to prevent the secondary users (SU) from accessing the idle frequency spectrums. In this article, we propose a scheme to defend against the PUE attacker using an adaptive Bayesian learning automaton algorithm named Multichannel Bayesian Learning Automata (MBLA). MBLA uses two different channels simultaneously to have faster and more accurate learning in non-stationary environments and selecting the optimal frequency channel in each time slot. We assume no prior information about the channel statistics like availability probabilities and primary user activities. In this scheme, the SU synchronizes with its receiver using an approach based on the uncoordinated frequency hopping (UFH) and sends its data on different channels, which are obtained by MBLA. We extract the best strategies for the attacker and the SU and then investigate the proposed scheme in terms of the SU throughput in the presence of the PUE attacker. Simulation results are provided to show the convergence speed of the MBLA algorithm and the network performance in terms of the SU throughput and overhead of the control message passing in the CR networks compared to other schemes. (C) 2020 Elsevier B.V. All rights reserved.
机译:虽然认知无线电(CR)提供动态频谱访问对抗频谱稀缺性,但它对CR网络施加了一些威胁。主要用户仿真(Pue)攻击是恶意用户试图模拟主用户信号以防止辅助用户(SU)访问空闲频谱的威胁之一。在本文中,我们建议使用名为MultiChannel Bayesian学习自动机(MBLA)的自适应贝叶斯学习自动化算法来捍卫Pue攻击者的计划。 MBLA同时使用两个不同的频道在非静止环境中具有更快,更准确的学习,并在每个时隙中选择最佳频率通道。我们假设没有关于可用性概率和主要用户活动的频道统计信息的先前信息。在该方案中,SU使用基于未协调的跳频(UFH)的方法与其接收器同步,并将其数据发送到由MBLA获得的不同通道。我们提取攻击者和SU的最佳策略,然后在苏吞助者的存在下调查苏吞吐量的拟议方案。提供了仿真结果以显示MBLA算法的收敛速度和与其他方案相比,在CR网络中传递的控制消息的SU吞吐量和网络性能方面的收敛速度和网络性能。 (c)2020 Elsevier B.v.保留所有权利。

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