A Novel Low-Cost Channel Sounder for Double-Directionally Resolved Measurements in the mmWave Band

IF 10.7 1区 计算机科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Wireless Communications Pub Date : 2024-11-13 DOI:10.1109/TWC.2024.3492184
Hussein Hammoud;Yuning Zhang;Zihang Cheng;Seun Sangodoyin;Markus Hofer;Faruk Pasic;Thomas M. Pohl;Radek Závorka;Ales Prokes;Thomas Zemen;Christoph Mecklenbräuker;Andreas F. Molisch
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Abstract

Since the design of wireless MIMO systems requires knowledge of the double-directional (i.e., directionally resolved at both link ends) channel characteristics, and 5G/6G use higher frequency bands, there is the need for double-directional measurements in the mmWave spectrum, along with channel sounders that can accurately perform such measurements. This paper introduces a novel channel sounding approach based on a redirecting rotating mirror arrangement (ReRoMA). The method is low-cost and flexible as it requires only a single radio frequency chain at each link end and performs mechanical beamsteering. However, in contrast to existing rotating-horn systems, it physically separates the signal generation/transmission and the beam steering components, resulting in orders-of-magnitude faster measurements. The paper outlines the fundamental concept, describes details of the implementation, and demonstrates its application and accuracy using a 60GHz prototype for measurements in static reference scenarios, as well as dynamic measurements. We illustrate the detected propagation paths using dynamic angular and delay power spectra and correlate these findings with the surrounding environmental structure. Locations of environmental objects are detected within the Fourier resolution determined by bandwidth and horn width, with no noticeable degradation due to the faster measurements.
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用于毫米波波段双向分辨测量的新型低成本通道探测仪
由于无线MIMO系统的设计需要了解双向(即在链路两端进行方向解析)信道特性,而5G/6G使用更高的频段,因此需要在毫米波频谱中进行双向测量,以及可以精确执行此类测量的信道测深器。本文介绍了一种基于重定向旋转反射镜排列(ReRoMA)的新型航道测深方法。该方法成本低且灵活,因为它只需要在每个链路端使用单个射频链,并执行机械波束导向。然而,与现有的旋转喇叭系统相比,它在物理上分离了信号产生/传输和波束转向组件,从而使测量速度提高了几个数量级。本文概述了基本概念,描述了实现的细节,并使用60GHz原型在静态参考场景和动态测量中演示了其应用和准确性。我们使用动态角度和延迟功率谱来说明检测到的传播路径,并将这些发现与周围环境结构联系起来。在由带宽和喇叭宽度确定的傅里叶分辨率内检测环境物体的位置,由于更快的测量,没有明显的退化。
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来源期刊
CiteScore
18.60
自引率
10.60%
发文量
708
审稿时长
5.6 months
期刊介绍: The IEEE Transactions on Wireless Communications is a prestigious publication that showcases cutting-edge advancements in wireless communications. It welcomes both theoretical and practical contributions in various areas. The scope of the Transactions encompasses a wide range of topics, including modulation and coding, detection and estimation, propagation and channel characterization, and diversity techniques. The journal also emphasizes the physical and link layer communication aspects of network architectures and protocols. The journal is open to papers on specific topics or non-traditional topics related to specific application areas. This includes simulation tools and methodologies, orthogonal frequency division multiplexing, MIMO systems, and wireless over optical technologies. Overall, the IEEE Transactions on Wireless Communications serves as a platform for high-quality manuscripts that push the boundaries of wireless communications and contribute to advancements in the field.
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