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Multi-Phase Smart Relaying and Cooperative Jamming in Secure Cognitive Radio Networks

机译:安全认知无线电网络中的多相智能中继和协作干扰

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摘要

In this paper, we investigate cooperative secure communications in a four-node cognitive radio network where the secondary receiver is treated as a potential eavesdropper with respect to the primary transmission. The secondary user is allowed to transmit his own signals under the condition that the primary user’s secrecy rate and transmission scheme are intact. Under this setting, we derive the secondary user’s achievable rates and the related constraints to guarantee the primary user’s weak secrecy rate, when Gelfand-Pinsker coding is used at the secondary transmitter. In addition, we propose a multiphase transmission scheme to include: 1) the phases of the clean relaying with cooperative jamming and 2) the latency to successfully decode the primary message at the secondary transmitter. A capacity upper bound for the secondary user is also derived. Numerical results show that: 1) the proposed scheme can outperform the traditional ones by properly selecting the secondary user’s parameters of different transmission schemes according to the relative positions of the nodes and 2) the derived capacity upper bound is close to the secondary user’s achievable rate within 0.3 bits/channel use, especially when the secondary transmitter/receiver is far/close enough to the primary receiver/transmitter, respectively. Thereby, a smart secondary transmitter is able to adapt the relaying and cooperative jamming to guarantee primary secrecy rates and to transmit its own data at the same time from relevant geometric positions.
机译:在本文中,我们研究了四节点认知无线电网络中的协作安全通信,其中,次要接收器被视为相对于主要传输的潜在窃听者。在主要用户的保密率和传输方案完好无损的情况下,允许次要用户传输自己的信号。在此设置下,当在副发射机上使用Gelfand-Pinsker编码时,我们得出副用户可达到的速率以及相关的约束条件,以确保主用户的弱保密率。此外,我们提出了一种多相传输方案,该方案包括:1)具有协作干扰的干净中继的阶段,以及2)在辅助发射机处成功解码主消息的等待时间。还导出了次要用户的容量上限。数值结果表明:1)根据节点的相对位置,通过适当选择不同传输方案的次用户参数,提出的方案优于传统方案; 2)导出的容量上限接近于次用户可达到的速率。在0.3位/通道的使用范围内,尤其是当辅助发射机/接收机分别与主接收机/发射机足够远/很近时。因此,智能的辅助发送器能够适应中继和协作干扰,以保证主要的保密率,并同时从相关的几何位置发送其自身的数据。

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