Castellanos German, Deruyck Margot, Martens Luc, Joseph Wout
Department of Electronics Engineering, Colombian School of Engineering, Bogota 111166, Colombia.
Department of Information Technology, IMEC-Ghent University, 9052 Ghent, Belgium.
Sensors (Basel). 2019 Jul 30;19(15):3342. doi: 10.3390/s19153342.
Today's wireless networks provide us reliable connectivity. However, if a disaster occurs, the whole network could be out of service and people cannot communicate. Using a fast deployable temporally network by mounting small cell base stations on unmanned aerial vehicles (UAVs) could solve the problem. Yet, this raises several challenges. We propose a capacity-deployment tool to design the backhaul network for UAV-aided networks and to evaluate the performance of the backhaul network in a realistic scenario in the city center of Ghent, Belgium. This tool assigns simultaneously resources to the ground users-access network-and to the backhaul network, taking into consideration backhaul capacity and power restrictions. We compare three types of backhaul scenarios using a 3.5 GHz link, 3.5 GHz with carrier aggregation (CA) and the 60 GHz band, considering three different types of drones. The results showed that an optimal UAV flight height (80 m) could satisfy both access and backhaul networks; however, full coverage was difficult to achieve. Finally, we discuss the influence of the flight height and the number of requesting users concerning the network performance and propose an optimal configuration and new mechanisms to improve the network capacity, based on realistic restrictions.
如今的无线网络为我们提供了可靠的连接。然而,如果发生灾难,整个网络可能会停止服务,人们将无法通信。通过在无人机(UAV)上安装小型基站来使用快速可部署的临时网络可以解决这个问题。然而,这也带来了一些挑战。我们提出了一种容量部署工具,用于为无人机辅助网络设计回程网络,并在比利时根特市中心的实际场景中评估回程网络的性能。该工具同时为地面用户接入网络和回程网络分配资源,同时考虑回程容量和功率限制。我们使用3.5 GHz链路、带载波聚合(CA)的3.5 GHz以及60 GHz频段,考虑三种不同类型的无人机,比较了三种回程场景。结果表明,最佳无人机飞行高度(80米)可以同时满足接入网络和回程网络;然而,难以实现全面覆盖。最后,我们讨论了飞行高度和请求用户数量对网络性能的影响,并基于实际限制提出了一种优化配置和新机制,以提高网络容量。