论文标题

连接传输和反射性波束成形,用于RIS辅助秘密密钥一代

Joint Transmit and Reflective Beamforming for RIS-assisted Secret Key Generation

论文作者

Hu, Lei, Li, Guyue, Qian, Xuewen, Ng, Derrick Wing Kwan, Hu, Aiqun

论文摘要

可重构智能表面(RIS)是一种有前途的技术,可以增强物理层密钥生成(PKG)的性能,因为它能够智能自定义无线电环境。现有的RIS辅助PKG方法主要基于发射机和RIS在发射机和RIS上的独立和相同分布(I.I.D.)通道模型的理想主义假设。但是,I.I.D.在各向同性散射环境中,模型对于典型的RI不准确。同样,忽略了通道空间相关性的存在将降低PKG性能。在本文中,我们在多安德纳纳系统中建立了一个通用的空间相关通道模型,并根据基站(BS)和RIS提出​​了一个新的PKG框架。具体而言,我们得出一个封闭形式的表达式,用于表征关键产生速率(KGR)并获得光束形式的全球最佳解决方案,以最大化KGR。此外,我们分析了采用I.I.D.的假设的KGR性能差异。模型和空间相关模型的模型。发现专为相关模型设计的波束形成优于I.I.D.模型虽然KGR增益随通道相关性而增加。仿真结果表明,与基于I.I.D.的现有方法相比。当BS天线相关性$ρ$为$ 0.3 $,RIS元素间距是波长的一半时,我们提出的方法淡入模型,达到了$ 5 $ DB的性能增长。

Reconfigurable intelligent surface (RIS) is a promising technique to enhance the performance of physical-layer key generation (PKG) due to its ability to smartly customize the radio environments. Existing RIS-assisted PKG methods are mainly based on the idealistic assumption of an independent and identically distributed (i.i.d.) channel model at both the transmitter and the RIS. However, the i.i.d. model is inaccurate for a typical RIS in an isotropic scattering environment. Also, neglecting the existence of channel spatial correlation would degrade the PKG performance. In this paper, we establish a general spatially correlated channel model in multi-antenna systems and propose a new PKG framework based on the transmit and the reflective beamforming at the base station (BS) and the RIS. Specifically, we derive a closed-form expression for characterizing the key generation rate (KGR) and obtain a globally optimal solution of the beamformers to maximize the KGR. Furthermore, we analyze the KGR performance difference between the one adopting the assumption of the i.i.d. model and that of the spatially correlated model. It is found that the beamforming designed for the correlated model outperforms that for the i.i.d. model while the KGR gain increases with the channel correlation. Simulation results show that compared to existing methods based on the i.i.d. fading model, our proposed method achieves about $5$ dB performance gain when the BS antenna correlation $ρ$ is $0.3$ and the RIS element spacing is half of the wavelength.

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