论文标题

物联网网络中无人机中继辅助紧急通信:资源分配和轨迹优化

UAV Relay-Assisted Emergency Communications in IoT Networks: Resource Allocation and Trajectory Optimization

论文作者

Tran, Dinh-Hieu, Nguyen, Van-Dinh, Gautam, Sumit, Chatzinotas, Symeon, Vu, Thang X., Ottersten, Bjorn

论文摘要

无人驾驶飞机(UAV)通信已成为物联网(IoT)网络中紧急通信(例如自然灾害)的重要技术,以提高灾难预测,损害评估和救援行动的能力。可以将无人机部署为飞行基站(BS),以从时间约束的IoT设备中收集数据,然后将其转移到地面网关(GW)。通常,IoT设备和无人机的存储容量的延迟约束很大程度上阻碍了无人机辅助IoT网络的实际应用。在本文中,在无人机上采用了{Fulluplex(FD)无线电}来克服这些挑战。此外,还认为用于基于无人机的继电器的半双链(HD)方案也被认为提供了两种模式之间的比较研究(Viz。,FD和HD)。 {本文中,如果其数据收集到无人机收集并在飞行时间及时运送到GW}。在这种情况下,我们旨在通过共同优化带宽,功率分配和无人机轨迹来最大化所服务的IoT设备的数量,同时满足每个设备的需求以及无人机的有限存储容量。由于其非凸性和组合性质,该法式优化问题很麻烦。 {为了吸引人的应用,我们首先将二进制变量放松为连续的变量,并将原始问题转换为更计算的可触犯形式。}通过利用内部近似框架,我们为非convex零件提供了新近近似函数,然后为其解决方案开发了一种简单而有效的迭代算法。接下来,我们尝试最大程度地提高总吞吐量,以应对所服务的物联网设备的数量。最后,数值结果表明,根据所服务的IoT设备和系统吞吐量的数量,所提出的算法显着超过了基准方法。

Unmanned aerial vehicle (UAV) communication has emerged as a prominent technology for emergency communications (e.g., natural disaster) in the Internet of Things (IoT) networks to enhance the ability of disaster prediction, damage assessment, and rescue operations promptly. A UAV can be deployed as a flying base station (BS) to collect data from time-constrained IoT devices and then transfer it to a ground gateway (GW). In general, the latency constraint at IoT devices and UAV's limited storage capacity highly hinder practical applications of UAV-assisted IoT networks. In this paper, {full-duplex (FD) radio} is adopted at the UAV to overcome these challenges. In addition, half-duplex (HD) scheme for UAV-based relaying is also considered to provide a comparative study between two modes (viz., FD and HD). {Herein, a device is considered to be successfully served iff its data is collected by the UAV and conveyed to GW timely during flight time}. In this context, we aim to maximize the number of served IoT devices by jointly optimizing bandwidth, power allocation, and the UAV trajectory while satisfying each device's requirement and the UAV's limited storage capacity. The formulated optimization problem is troublesome to solve due to its non-convexity and combinatorial nature. {Towards appealing applications, we first relax binary variables into continuous ones and transform the original problem into a more computationally tractable form.} By leveraging inner approximation framework, we derive newly approximated functions for non-convex parts and then develop a simple yet efficient iterative algorithm for its solutions. Next, we attempt to maximize the total throughput subject to the number of served IoT devices. Finally, numerical results show that the proposed algorithms significantly outperform benchmark approaches in terms of the number of served IoT devices and system throughput.

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