This paper studies how to achieve a high and flexible coverage performance of a large-scale cellular network that enables unmanned aerial vehicles (UAVs) for non-orthogonal multiple access (NOMA) transmission to simultaneously serve multiple users. The considered cellular network consists of a tier of base stations and a tier of UAVs. Each UAV is mounted with an intelligent reflecting surface (IRS) in order to serve as an aerial IRS reflecting signals between a base station and a user in the network. All the UAVs in the network are deployed based on a newly proposed three-dimensional (3D) point process that leads to a tractable and accurate analysis of the association statistics, which is traditionally difficult to analyze due to the mobility of UAVs. In light of this, we are able to analyze the downlink coverage of UAV-IRS-assisted NOMA transmission for two users and derive the corresponding coverage probabilities. Our coverage analyses shed light on the optimal allocations of transmit power between NOMA users and UAVs to accomplish the goal of ubiquitous and flexible NOMA transmission. We also conduct numerical simulations to validate our coverage analytical results while demonstrating the improved coverage performance achieved by aerial IRSs.
翻译:本文研究如何实现大规模蜂窝网络的高灵活覆盖率,使无人驾驶航空器(无人驾驶航空器)能够进行非横向多重存取(NOMA)传输,同时为多个用户服务。考虑的蜂窝网络由一组基站和一级无人驾驶航空器组成。每个无人驾驶航空器都安装了一个智能反射表面(IRS),作为反映基地台与网络用户之间信号的空中IRS。网络中的所有无人驾驶航空器都是根据新提议的三维(3D)点程序部署的,该程序导致对关联统计进行可移动和准确的分析,而由于无人驾驶航空器的移动性,这种分析历来难以分析。鉴于此,我们可以分析无人驾驶航空器协助的NOMA传输对两个用户的下行连接范围,并得出相应的覆盖概率。我们的覆盖分析揭示了NOMA用户与无人驾驶航空器之间最优化的传输能力分配,以达到无孔不入和灵活的NOMA传输目标。我们还进行数字模拟,以验证我们的覆盖范围分析结果,同时展示航空覆盖所实现的改进。