Enabling Air-to-Air Wideband Channel Measurements between Small Unmanned Aerial Vehicles with Optical Fibers

Dennis Becker, L. Schalk
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引用次数: 11

Abstract

In order to ensure safe and efficient operation and to prevent collisions, unmanned aerial vehicles (UAVs) need to communicate with each other with high reliability. To design respective communication systems, accurate air-to-air (A2A) channel models are needed, especially for urban environments, where the channel characteristics are hard to predict due to rich multipath propagation, diffractions and non line of sight (LOS) conditions. For these models, channel measurements in different scenarios are inevitable to model the real-world communication channel. However, small sized UAVs are very limited in carrying payload and in power supply, making it difficult or often impossible to use high performing channel-sounding hardware equipment. As a result, less resource demanding hardware with lower performance in the sense of clock synchronization, time resolution or dynamic range is usually applied leading to a limited propagation channel characterization. In this work, we describe a measurement setup that allows using arbitrary channel sounder hardware by exploiting analog optical links in order to enable A2A wideband channel measurements between small sized UAVs. We extend the operation of our MEDAV RUSKDLR channel sounder by guiding a 100 MHz bandwidth radio frequency (RF) signal at 5.2 GHz through two 600 m long optical fibers attached on two hexacopters after being converted with high bandwidth converters and show the feasibility of this setup with first flight trials in an urban scenario.
利用光纤实现小型无人机间空对空宽带信道测量
为了保证安全高效运行,防止碰撞,无人机之间需要进行高可靠性的通信。为了设计相应的通信系统,需要精确的空对空(A2A)信道模型,特别是在城市环境中,由于多径传播、衍射和非视线(LOS)条件,信道特性难以预测。对于这些模型,在不同场景下的信道测量是建模真实世界通信信道不可避免的。然而,小型无人机在携带有效载荷和电源供应方面非常有限,使得难以或通常不可能使用高性能信道探测硬件设备。因此,在时钟同步、时间分辨率或动态范围方面,通常应用资源要求较低但性能较低的硬件,从而导致有限的传播信道表征。在这项工作中,我们描述了一种测量设置,该设置允许通过利用模拟光链路使用任意信道测深器硬件,以便在小型无人机之间实现A2A宽带信道测量。我们扩展了MEDAV RUSKDLR通道探测器的操作范围,在高带宽转换器转换后,通过连接在两个六轴飞行器上的两根600米长的光纤,引导5.2 GHz的100 MHz带宽射频(RF)信号,并在城市场景中进行首次飞行试验,展示了这种设置的可行性。
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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