近场视距MIMO通信中的空间复用:旁轴和非旁轴部署

IF 5.3 2区 计算机科学 Q1 TELECOMMUNICATIONS
Juan Carlos Ruiz-Sicilia;Marco Di Renzo;Placido Mursia;Aryan Kaushik;Vincenzo Sciancalepore
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引用次数: 0

摘要

第六代(6G)无线网络在设计阶段,除了网络容量和连接性外,还包括减少能源足迹(可持续性)的方面。这种范式变化需要全新的物理层技术。值得注意的是,大孔径阵列的集成和在高频段(如次太赫兹频谱)上的传输是两个有希望的选择。在许多有实际意义的通信场景中,在次太赫兹频率范围内使用大型天线阵列通常会导致以视距通道为特征的短距离传输距离,其中发射器和接收器对位于彼此的(辐射)近场。这些特点使得基于远场近似的多输入多输出(MIMO)系统的传统设计在空间复用增益方面不是最优的。为了克服这些限制,MIMO系统需要新的设计,考虑到近场电磁波的球形波前特征,以确保在不增加功率消耗的情况下获得最高的空间复用增益。在本文中,我们介绍了一个分析框架来优化天线阵列在视距信道中的部署,它可以应用于近轴和非近轴网络部署。在傍轴设置中,我们设计了一个更简单的分析框架,与文献中可用的框架相比,它提供了关于关键设计参数影响的明确信息。在非傍轴设置中,我们引入了一种新的分析框架,使我们能够确定实现最高空间复用增益所需满足的一组充分条件。通过数值模拟验证了所提出的设计方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Spatial Multiplexing in Near-Field Line-of-Sight MIMO Communications: Paraxial and Non-Paraxial Deployments
Sixth generation (6G) wireless networks are envisioned to include aspects of energy footprint reduction (sustainability), besides those of network capacity and connectivity, at the design stage. This paradigm change requires radically new physical layer technologies. Notably, the integration of large-aperture arrays and the transmission over high frequency bands, such as the sub-terahertz spectrum, are two promising options. In many communication scenarios of practical interest, the use of large antenna arrays in the sub-terahertz frequency range often results in short-range transmission distances that are characterized by line-of-sight channels, in which pairs of transmitters and receivers are located in the (radiating) near field of one another. These features make the traditional designs, based on the far-field approximation, for multiple-input multiple-output (MIMO) systems sub-optimal in terms of spatial multiplexing gains. To overcome these limitations, new designs for MIMO systems are required, which account for the spherical wavefront that characterizes the electromagnetic waves in the near field, in order to ensure the highest spatial multiplexing gain without increasing the power expenditure. In this paper, we introduce an analytical framework for optimizing the deployment of antenna arrays in line-of-sight channels, which can be applied to paraxial and non-paraxial network deployments. In the paraxial setting, we devise a simpler analytical framework, which, compared to those available in the literature, provides explicit information about the impact of key design parameters. In the non-paraxial setting, we introduce a novel analytical framework that allows us to identify a set of sufficient conditions to be fulfilled for achieving the highest spatial multiplexing gain. The proposed designs are validated with numerical simulations.
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来源期刊
IEEE Transactions on Green Communications and Networking
IEEE Transactions on Green Communications and Networking Computer Science-Computer Networks and Communications
CiteScore
9.30
自引率
6.20%
发文量
181
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