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Against Pilot Spoofing Attack with Double Channel Training in Massive MIMO NOMA Systems

机译:在大规模MIMO NOMA系统中通过双通道训练对抗飞行员的欺骗攻击

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To combat the pilot spoofing attack in non-orthogonal multiple access (NOMA) systems, we propose a double channel training scheme in this paper. Specifically, we consider two users in each cluster and both users send the training sequence in the first uplink training phase, while one of them keeps silent in the second phase. By exploiting channel estimation results in the two phases, more accurate legitimate channel estimation can be obtained by removing the contamination from the eavesdropping channel. Thus, the pilot spoofing attack can be mitigated effectively. We then analyze the achievable downlink secrecy rate with matched filter precoding scheme. Simulation results demonstrate that the achievable secrecy rate can be improved dramatically with the proposed scheme even under very strong pilot attack power.
机译:为了对抗非正交多路访问(NOMA)系统中的飞行员欺骗攻击,我们在本文中提出了一种双通道训练方案。具体来说,我们考虑每个群集中有两个用户,并且两个用户都在第一个上行链路训练阶段发送训练序列,而其中一个在第二个阶段保持沉默。通过利用两个阶段中的信道估计结果,可以通过从窃听信道中除去污染来获得更准确的合法信道估计。因此,可以有效地减轻飞行员的欺骗攻击。然后,我们使用匹配的滤波器预编码方案分析可实现的下行链路保密率。仿真结果表明,即使在非常强的飞行员攻击力下,所提出的方案也可以显着提高可达到的保密率。

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