Measurement-based characterization of LOS and NLOS drone-to-ground channels

Yan Shi, R. Enami, John Wensowitch, J. Camp
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引用次数: 36

Abstract

The last few years have seen a rapid growth in unmanned aerial vehicle (UAV) based innovations and technologies, particularly for smaller drones. The rapid response to natural disasters, high data rate access in public safety situations, and the robustness of long-haul communication relays are highly dependent on airborne communication networks. A more precise channel characterization of air-to-ground links is imperative to establish these drone-based communication networks. However, there have been very limited efforts to understand the unique propagation channels encountered in drone-based communications, especially for wideband beamforming systems. In this paper, we perform a measurement-driven study to characterize air-to-ground wireless channels between UAV platforms and terrestrial users in practical Line of Sight (LOS) and Non Line of Sight (NLOS) scenarios across a wide range of carrier frequencies, including cellular (900 MHz and 1800 MHz), and WiFi (5 GHz) frequency bands. Furthermore, we investigate the feasibility of drone-based beamforming using IEEE 802.11-like signaling. We find that the drone-to-ground path loss differences are frequency dependent and closely related to drone altitude. The drone-based beamforming system can improve throughput significantly over IEEE 802.11 SISO schemes with select carrier frequencies in both LOS and NLOS scenarios up to 73.6% and 120.1%, respectively. Since our study spans many critical frequency bands, these results serve as a fundamental step towards understanding drone-to-ground communications and impact of beamforming-based applications in future aerial networks.
LOS和NLOS无人机对地信道的基于测量的表征
在过去的几年里,无人驾驶飞行器(UAV)的创新和技术迅速发展,特别是小型无人机。对自然灾害的快速响应、公共安全情况下的高数据速率访问以及长途通信中继的鲁棒性高度依赖于机载通信网络。要建立这些无人机通信网络,必须对空对地链路进行更精确的信道表征。然而,在了解无人机通信中遇到的独特传播信道方面,特别是对于宽带波束形成系统,所做的努力非常有限。在本文中,我们进行了一项测量驱动的研究,以在广泛的载波频率范围内,包括蜂窝(900 MHz和1800 MHz)和WiFi (5 GHz)频段,在实际瞄准线(LOS)和非瞄准线(NLOS)场景中,表征无人机平台和地面用户之间的空对地无线信道。此外,我们研究了使用IEEE 802.11类信令的无人机波束成形的可行性。我们发现无人机与地面的路径损失差异是频率相关的,并且与无人机高度密切相关。基于无人机的波束形成系统可以显著提高IEEE 802.11 SISO方案的吞吐量,在LOS和NLOS场景下,选择载波频率分别高达73.6%和120.1%。由于我们的研究跨越了许多关键频段,因此这些结果是理解无人机与地面通信以及基于波束形成的应用在未来空中网络中的影响的基本步骤。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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