Coverage Probability-Constrained Maximum Throughput in UAV-Aided SWIPT Networks

Ruihong Jiang, Ke Xiong, Tong Liu, Duohua Wang, Z. Zhong
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引用次数: 3

Abstract

This paper investigates the coverage provability-constrained throughput in unmanned aerial vehicle (UAV)-assisted simultaneous wireless information and power transfer (SWIPT) networks, where UAVs are used as aerial base stations and their positions are modeled by the 2-dimension Poisson point process (2-D PPP). The ground users (GUs) decode information as well as harvest energy from the transmitted signals from UAVs. Both power splitting (PS) and time switching (TS) architectures are employed at GUs. By using a stochastic geometry approach, the explicit expressions of the information-energy (I-E) coverage probabilities are derived. To describe the optimal deployment density of UAVs, an optimization problem is formulated to maximize the system throughput subject to the I-E coverage probability constraint. By using Karush-Kuhn-Tucker (KKT) conditions, the closed-form solution is derived. Simulation results demonstrate the correctness of our derived analytical results and show that compared with traditional linear EH model, the nonlinear EH model yields significant difference performance behaviors of the system. Moreover, the nonlinear EH model has a greater impact on EH for the system with TS-enabled GU than that with PS-enabled one. With the increment of the outage threshold, the required density of UAVs should be increased and both the throughput and the energy first increase and then decrease.
无人机辅助SWIPT网络覆盖概率约束下的最大吞吐量
本文研究了无人机(UAV)辅助同步无线信息和电力传输(SWIPT)网络中覆盖可证明约束的吞吐量,其中无人机作为空中基站,其位置采用二维泊松点过程(2d PPP)建模。地面用户(GUs)解码信息以及从无人机发射的信号中获取能量。GUs采用功率分裂(PS)和时间交换(TS)两种架构。利用随机几何方法,导出了信息-能量覆盖概率的显式表达式。为了描述无人机的最优部署密度,在I-E覆盖概率约束下,建立了系统吞吐量最大化的优化问题。利用Karush-Kuhn-Tucker (KKT)条件,导出了闭型解。仿真结果验证了分析结果的正确性,并表明与传统的线性EH模型相比,非线性EH模型在系统性能行为上有显著差异。此外,非线性EH模型对ts - GU系统的EH影响大于ps - GU系统。随着停机阈值的增加,所需无人机的密度增加,吞吐量和能量先增加后降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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