Terahertz (THz) communications with multi-GHz bandwidth are envisioned as a key technology for 6G systems. Ultra-massive (UM) MIMO with hybrid beamforming architectures are widely investigated to provide a high array gain to overcome the huge propagation loss. However, most of the existing hybrid beamforming architectures can only utilize the multiplexing offered by the multipath components, i.e., inter-path multiplexing, which is very limited due to the spatially sparse THz channel. In this paper, a widely-spaced multi-subarray (WSMS) hybrid beamforming architecture is proposed, which improves the multiplexing gain by exploiting a new type of intra-path multiplexing provided by the spherical-wave propagation among k widely-spaced subarrays, in addition to the inter-path multiplexing. The resulting multiplexing gain of WSMS architecture is k times of the existing architectures. To harness WSMS hybrid beamforming, a novel design problem is formulated by optimizing the number of subarrays, subarray spacing, and hybrid beamforming matrices to maximize the spectral efficiency, which is decomposed into two subproblems. An optimal closed-form solution is derived for the first hybrid beamforming subproblem, while a dominant-line-of-sight-relaxation algorithm is proposed for the second array configuration subproblem. Extensive simulation results demonstrate that the WSMS architecture and proposed algorithms substantially enhance the spectral efficiency and energy efficiency.
翻译:Terahertz (Thz) 多GHz 带宽的通信(Thz) 被设想为6G 系统的关键技术。 Ultra- massive (WSMS) MIMO 与混合波形结构进行广泛调查,以提供高阵列增益以克服巨大的传播损失。 但是,大多数现有的混合波形结构只能利用多路传输组件提供的多路传输,即由于空间稀少的THz 频道而非常有限的多路传输多路传输。在本文中,提出了一个广空多端多端(WSMS)混合波形结构,通过利用全方位内部多路传输增益来提高多路传输收益。除了多路传输外,大多数现有的混合波形结构(即跨路传输多路传输多路传输多路传输)只能利用多路传输的多路传输功能。 由此产生的SWMS 结构的多路传输增益益益益增是现有结构的 k timesby times。 利用WSMS (WSMS) 混合阵列(WSMS) 混合阵列组合结构结构, 混合阵列组合结构的全新设计问题是通过优化第一个阵列的亚阵列的阵列的阵列变法获得, 将精益增增增增增益益益益增增增增增增增增益益。