Department of Information and Communication Engineering, University of Murcia, 30100 Murcia, Spain.
Department of Electronics, Computer Technology and Projects, Technical University of Cartagena, 30202 Cartagena, Spain.
Sensors (Basel). 2020 Jul 23;20(15):4109. doi: 10.3390/s20154109.
The distribution of Internet of Things (IoT) devices in remote areas and the need for network resilience in such deployments is increasingly important in smart spaces covering scenarios, such as agriculture, forest, coast preservation, and connectivity survival against disasters. Although Low-Power Wide Area Network (LPWAN) technologies, like LoRa, support high connectivity ranges, communication paths can suffer from obstruction due to orography or buildings, and large areas are still difficult to cover with wired gateways, due to the lack of network or power infrastructure. The proposal presented herein proposes to mount LPWAN gateways in drones in order to generate airborne network segments providing enhanced connectivity to sensor nodes wherever needed. Our LoRa-drone gateways can be used either to collect data and then report them to the back-office directly, or store-carry-and-forward data until a proper communication link with the infrastructure network is available. The proposed architecture relies on Multi-Access Edge Computing (MEC) capabilities to host a virtualization platform on-board the drone, aiming at providing an intermediate processing layer that runs Virtualized Networking Functions (VNF). This way, both preprocessing or intelligent analytics can be locally performed, saving communications and memory resources. The contribution includes a system architecture that has been successfully validated through experimentation with a real test-bed and comprehensively evaluated through computer simulation. The results show significant communication improvements employing LoRa-drone gateways when compared to traditional fixed LoRa deployments in terms of link availability and covered areas, especially in vast monitored extensions, or at points with difficult access, such as rugged zones.
物联网 (IoT) 设备在偏远地区的分布以及此类部署中网络弹性的需求在智能空间中变得越来越重要,这些智能空间涵盖了农业、森林、海岸保护以及灾害生存连接等场景。尽管低功耗广域网 (LPWAN) 技术,如 LoRa,支持高连接范围,但通信路径可能会由于地形或建筑物而受到阻碍,并且由于缺乏网络或电力基础设施,大面积区域仍然难以用有线网关覆盖。本文提出的方案建议在无人机上安装 LPWAN 网关,以便生成空中网络段,为需要的传感器节点提供增强的连接。我们的 LoRa 无人机网关可以用于直接收集数据并将其报告给后端办公室,或者存储-携带-转发数据,直到与基础设施网络建立适当的通信链路。所提出的架构依赖于多接入边缘计算 (MEC) 功能,在无人机上托管虚拟化平台,旨在提供一个运行虚拟网络功能 (VNF) 的中间处理层。这样,既可以在本地执行预处理或智能分析,也可以节省通信和内存资源。该贡献包括一个系统架构,该架构已经通过使用真实测试平台的实验得到了成功验证,并通过计算机模拟进行了全面评估。结果表明,与传统的固定 LoRa 部署相比,使用 LoRa 无人机网关可以显著提高链路可用性和覆盖区域,尤其是在广阔的监测区域或难以到达的区域,例如崎岖区域。