论文标题

关于Terahertz频段中物理层范围安全性的多 - 安特纳纳技术

On Multiple-Antenna Techniques for Physical-Layer Range Security in the Terahertz Band

论文作者

Gao, Weijun, Lu, Xuyang, Han, Chong, Chen, Zhi

论文摘要

Terahertz(THZ)通信由于超质量多重 - 安德滕纳技术带来的高方向性特征,在角域中具有自然有希望的物理层安全性(PLS)性能。但是,即使合法用户和窃听者的沟通距离不同,传统的多种武器技术也无法与居住在THZ梁领域中的窃听器打击。这项THZ范围安全挑战激发了我们研究新的多重Aantenna技术,以提供THZ范围和角度安全性。在本文中,我们首先对在安全方案范围内的多个天线通道的保密能力进行了理论分析。基于这一点,作为候选多重 - 安特纳技术的频率不同的数组在解决范围安全问题方面被证明无效。然后,提出了一个针对THZ范围安全性的新颖间隔阵列和横梁成形设计的动机,提出了在近场区域实现通信。开发了一种无约束的最佳接近(NCOA)算法,以达到最佳保密率。仿真结果表明,在范围内窃听的范围安全场景下,我们提出的广泛间隔的天线通信方案可以确保当传输功率为10 dbm并且传播距离为10 m时,可以确保6 bps/hz的保密率。

Terahertz (THz) communications have naturally promising physical layer security (PLS) performance in the angular domain due to the high directivity feature brought by the ultra-massive multiple-antenna techniques. However, traditional multiple-antenna techniques fail to combat eavesdroppers residing in the THz beam sector, even when the communication distances of legitimate users and eavesdroppers are different. This THz range security challenge motivates us to study new multiple-antenna techniques to provide THz range and angular security. In this paper, we first conduct a theoretical analysis of the secrecy capacity of the multiple antenna channel under the range security scenario. Based on this, the frequency diverse array, as a candidate multiple-antenna technique, is proven ineffective in addressing the range security problem. Then, motivated by the theoretical analysis, a novel widely-spaced array and beamforming design for THz range security are proposed, which realize communications in the near-field regions. A non-constrained optimum approaching (NCOA) algorithm is developed to achieve the optimal secrecy rate. Simulation results illustrate that under the range security scenario where the eavesdropper is inside the beam sector, our proposed widely-spaced antenna communication scheme can ensure a 6 bps/Hz secrecy rate when the transmit power is 10 dBm and the propagation distance is 10 m.

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