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Unmanned Aerial Vehicle With Underlaid Device-to-Device Communications: Performance and Tradeoffs

机译:具有底层设备间通信的无人机:性能和权衡

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In this paper, the deployment of an unmanned aerial vehicle (UAV) as a flying base station used to provide the fly wireless communications to a given geographical area is analyzed. In particular, the coexistence between the UAV, that is transmitting data in the downlink, and an underlaid device-to-device (D2D) communication network is considered. For this model, a tractable analytical framework for the coverage and rate analysis is derived. Two scenarios are considered: a static UAV and a mobile UAV. In the first scenario, the average coverage probability and the system sum-rate for the users in the area are derived as a function of the UAV altitude and the number of D2D users. In the second scenario, using the disk covering problem, the minimum number of stop points that the UAV needs to visit in order to completely cover the area is computed. Furthermore, considering multiple retransmissions for the UAV and D2D users, the overall outage probability of the D2D users is derived. Simulation and analytical results show that, depending on the density of D2D users, the optimal values for the UAV altitude, which lead to the maximum system sum-rate and coverage probability, exist. Moreover, our results also show that, by enabling the UAV to intelligently move over the target area, the total required transmit power of UAV while covering the entire area, can be minimized. Finally, in order to provide full coverage for the area of interest, the tradeoff between the coverage and delay, in terms of the number of stop points, is discussed.
机译:在本文中,分析了无人飞行器(UAV)作为用于向给定地理区域提供飞行无线通信的飞行基站的部署。特别地,考虑了在下行链路中正在发送数据的UAV与底层的设备到设备(D2D)通信网络之间的共存。对于此模型,得出了覆盖率和费率分析的易于处理的分析框架。考虑了两种情况:静态无人机和移动无人机。在第一种情况下,根据无人机高度和D2D用户数量得出区域内用户的平均覆盖概率和系统求和率。在第二种情况下,使用磁盘覆盖问题,计算出无人飞行器需要访问以完全覆盖该区域的最小停靠点数量。此外,考虑到针对UAV和D2D用户的多次重传,得出了D2D用户的总中断概率。仿真和分析结果表明,根据D2D用户的密度,存在导致最大系统求和率和覆盖概率的无人机高度的最佳值。此外,我们的结果还表明,通过使无人机能够智能地在目标区域上移动,可以将覆盖整个区域的无人机所需的总发射功率降至最低。最后,为了提供感兴趣区域的完整覆盖范围,讨论了在停止点数量方面覆盖范围和延迟之间的折衷。

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