Abbasi M A B, Fusco V F, Yurduseven O, Fromenteze T
Centre for Wireless Innovation (CWI), Institute of Electronics, Communications and Information Technology (ECIT), School of Electronics, Electrical Engineering and Computer Science (EEECS), Queen's University Belfast, Belfast, BT3 9DT, UK.
XLIM Research Institute, University of Limoges, 87060, Limoges, France.
Sci Rep. 2020 Dec 17;10(1):22145. doi: 10.1038/s41598-020-78964-1.
This paper presents a physical frequency-diverse multimode lens-loaded cavity, designed and used for the purpose of the direction of arrival (DoA) estimation in millimetre-wave frequency bands for 5G and beyond. The multi-mode mechanism is realized using an electrically-large cavity, generating spatio-temporally incoherent radiation masks leveraging the frequency-diversity principle. It has been shown for the first time that by placing a spherical constant dielectric lens (constant-ϵ) in front of the radiating aperture of the cavity, the spatial incoherence of the radiation modes can be enhanced. The lens-loaded cavity requires only a single lens and output port, making the hardware development much simpler and cost-effective compared to conventional DoA estimators where multiple antennas and receivers are classically required. Using the lens-loaded architecture, an increase of up to 6 dB is achieved in the peak gain of the synthesized quasi-random sampling bases from the frequency-diverse cavity. Despite the fact that the practical frequency-diverse cavity uses a limited subset of quasi-orthogonal modes below the upper bound limit of the number of theoretical modes, it is shown that the proposed lens-loaded cavity is capable of accurate DoA estimation. This is achieved thanks to the sufficient orthogonality of the leveraged modes and to the presence of the spherical constant-ϵ lens which increases the signal-to-noise ratio (SNR) of the received signal. Experimental results are shown to verify the proposed approach.
本文提出了一种物理频率分集多模透镜加载腔,其设计目的是用于5G及以后毫米波频段的到达方向(DoA)估计。多模机制是通过一个电大尺寸的腔来实现的,利用频率分集原理生成时空非相干辐射掩码。首次表明,通过在腔的辐射孔径前放置一个球形恒定电介质透镜(恒定介电常数),可以增强辐射模式的空间非相干性。与传统的DoA估计器相比,透镜加载腔仅需一个透镜和一个输出端口,这使得硬件开发更加简单且经济高效,传统DoA估计器通常需要多个天线和接收器。使用透镜加载架构,频率分集腔合成的准随机采样基的峰值增益提高了6dB。尽管实际的频率分集腔使用的是理论模式数量上限以下的有限子集准正交模式,但结果表明,所提出的透镜加载腔能够进行准确的DoA估计。这得益于所利用模式的充分正交性以及球形恒定介电常数透镜的存在,该透镜提高了接收信号的信噪比(SNR)。实验结果验证了所提出的方法。