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Constant modulus beamforming for large-scale MISOME wiretap channel

机译:用于大规模MISOME窃听通道的恒模波束形成

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The multi-input single-output multi-eavesdropper (MISOME) wiretap channel is one of the generic wiretap channels in physical layer security. In Khisti and Wornell's classical work [1], the optimal secure beamformer for MISOME has been derived under the total power constraint. In this work, we revisit the MISOME wiretap channel and focus on the large-scale transmit antenna regime and the constant modulus beamformer design. The former is motivated by the significant spectral efficiency gains provided by massive antennas, and the latter is due to the consideration of cheap hardware implementation of constant modulus beamforming. However, from an optimization point of view, the secrecy beamforming with constant modulus constraints is challenging, more specifically, NP-hard. In light of this, we propose two methods to tackle it, namely the semidefinite relaxation (SDR) method and the ADMM-Dinkelbach method. Simulation results demonstrate that the ADMM-Dinkelbach method outperforms the SDR method, and can attain nearly optimal secrecy performance for the large-scale antenna scenario.
机译:多输入单输出多窃听者(MISOME)窃听通道是物理层安全性中的通用窃听通道之一。在Khisti和Wornell的经典著作[1]中,已经在总功率约束下得出了用于MISOME的最佳安全波束形成器。在这项工作中,我们将重新审视MISOME窃听通道,并将重点放在大型发射天线机制和恒定模量波束形成器设计上。前者是由大型天线提供的显着频谱效率增益驱动的,而后者则是由于考虑了恒定模量波束成形的廉价硬件实现。但是,从优化的角度来看,具有恒定模数约束的保密波束成形具有挑战性,尤其是NP-hard。有鉴于此,我们提出了两种解决方法,即半定松弛(SDR)方法和ADMM-Dinkelbach方法。仿真结果表明,ADMM-Dinkelbach方法优于SDR方法,并且对于大型天线场景,可以达到近乎最佳的保密性能。

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