论文标题

无人机辅助的物联网网络中最差的平均能耗最小化

Minimization of the Worst-Case Average Energy Consumption in UAV-Assisted IoT Networks

论文作者

Rosabal, Osmel Martínez, López, Onel Alcaraz, Pérez, Dian Echevarría, Shehab, Mohammad, Hilleshein, Henrique, Alves, Hirley

论文摘要

物联网(IoT)为大量设备带来了连接,这些设备需要节能解决方案,以应对有限的电池容量,上行链接式的流量和渠道障碍。在这项工作中,我们探讨了配备可配置天线的无人机(UAV)的使用,作为用于服务低功率IoT网络的灵活解决方案。我们制定了一个优化问题,以设置UAV的位置和天线束宽,以及IoT设备的发射功率,以平均信号到平均水平 - 平均式式式式 - plus-noise比率($ \ bar {\ bar {\ text {s}}} \ edimalline {in}}}} {in}} {in}} $ stript {我们最大程度地降低了后者最差的平均能源消耗,从而针对能源的最公平分配。这个问题是非凸面和高度非线性的。因此,我们将其重新构图为一系列可以迭代求解的三个几何程序。结果揭示了计划网络的好处,而与随机部署相比,在减少最差的平均能耗方面。此外,我们证明了目标$ \ bar {\ text {s}} \ overline {\ text {in}} \ text {r} $受IoT设备数量的限制,并突出显示无人机悬停高度在服务更广阔的区域时的主要影响。我们提出的算法在最大程度地降低最能源的物联网设备和收敛时间的平均能源消耗方面优于其他优化基准。

The Internet of Things (IoT) brings connectivity to a massive number of devices that demand energy-efficient solutions to deal with limited battery capacities, uplink-dominant traffic, and channel impairments. In this work, we explore the use of Unmanned Aerial Vehicles (UAVs) equipped with configurable antennas as a flexible solution for serving low-power IoT networks. We formulate an optimization problem to set the position and antenna beamwidth of the UAV, and the transmit power of the IoT devices subject to average-Signal-to-average-Interference-plus-Noise Ratio ($\bar{\text{S}}\overline{\text{IN}}\text{R}$) Quality of Service (QoS) constraints. We minimize the worst-case average energy consumption of the latter, thus, targeting the fairest allocation of the energy resources. The problem is non-convex and highly non-linear; therefore, we re-formulate it as a series of three geometric programs that can be solved iteratively. Results reveal the benefits of planning the network compared to a random deployment in terms of reducing the worst-case average energy consumption. Furthermore, we show that the target $\bar{\text{S}}\overline{\text{IN}}\text{R}$ is limited by the number of IoT devices, and highlight the dominant impact of the UAV hovering height when serving wider areas. Our proposed algorithm outperforms other optimization benchmarks in terms of minimizing the average energy consumption at the most energy-demanding IoT device, and convergence time.

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