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Aviation Multicarrier Communication System Performance in Several 5 GHz Band Air-Ground Channels - Invited Paper

机译:几个5 GHz频段空中地面信道上的航空多载波通信系统性能-邀请论文

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Aviation traffic is on the rise, in part due to a large increase in the number of unmanned aerial systems (UAS), also known as unmanned aerial vehicles (UAVs). With the rise in vehicle traffic will come increased communication traffic, and for the air-ground communications to/from all these air vehicles, new communication systems are required. In this paper we evaluate via simulations the performance of two new candidate systems over empirical air-ground channel models. These channel models - here for the 5 GHz band - are based on an extensive measurement campaign sponsored by NASA, with ground sites in multiple local environments. The two new multicarrier candidate schemes are 5 MHz bandwidth systems: a cyclic-prefix OFDM scheme similar to the previously proposed L-DACS1 scheme, and a new filterbank multicarrier (FBMC) scheme related to a prior L-band FBMC design of the authors. By taking advantage of the more compact FBMC spectrum, we can improve spectral efficiency via replacement of band-edge guard subcarriers with data-bearing subcarriers. Our design increases throughput by approximately 23%. The (uncoded) bit error ratio performance of the two schemes is evaluated for several modulations over three specific air-ground channels, and performance results are very similar between the two schemes: even in the worst-case channels and with highest modulation order, the FBMC bit error ratio is only marginally larger than that of the CP-OFDM scheme. Hence with nearly identical performance and significantly better throughput, the FBMC design is an attractive candidate for future air-ground communications in these settings.
机译:航空运输量正在上升,部分原因是无人驾驶飞机系统(UAS)(也称为无人驾驶飞机(UAV))的数量大大增加。随着车辆通信量的增加,通信业务量将随之增加,并且对于往返于所有这些飞行器的空地通信,需要新的通信系统。在本文中,我们通过仿真评估了两个新的候选系统在经验性地面-地面通道模型上的性能。这些信道模型(此处为5 GHz频带)基于NASA赞助的大规模测量活动,其地面站点位于多个本地环境中。这两个新的多载波候选方案是5 MHz带宽系统:类似于先前提出的L-DACS1方案的循环前缀OFDM方案,以及与作者先前的L波段FBMC设计相关的新的滤波器组多载波(FBMC)方案。通过利用更紧凑的FBMC频谱,我们可以通过将带边保护子载波替换为带有数据的子载波来提高频谱效率。我们的设计将吞吐量提高了约23%。针对三个特定空中地面信道上的几种调制,评估了两种方案的(未编码)误码率性能,并且两种方案之间的性能结果非常相似:即使在最坏情况的信道中,且调制顺序最高, FBMC的误码率仅略大于CP-OFDM方案的误码率。因此,FBMC设计具有几乎相同的性能和显着更高的吞吐量,是在这些环境下未来进行空地通信的理想之选。

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