双irs辅助无线通信中无人机群轨迹与协同波束形成设计

Yangzhe Liao, Shuang Xia, Ke Zhang, X. Zhai
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引用次数: 0

摘要

在即将到来的第五代(B5G)和第六代(6G)网络中,非地面通信已经成为无缝连接和无处不在的计算服务的技术推动者。但在实际应用中存在诸多技术限制,如部署成本高、能耗大、信息传输阻塞概率大、传播环境动态等。随着超材料技术的快速发展,高性价比、高能效的智能可重构表面(IRS)已成为全球公认的构建智能无线电环境的革命性技术。提出了一种新型的双IRS辅助无人机群通信网络架构,其中两个无人机群分别与主IRS反射面和副IRS反射面集成。提出了受一系列服务质量约束的无人机群携带主IRS的能量最小化问题。为了解决公式化的挑战性问题,我们首先将原始问题解耦为两个子问题。然后,提出了一种启发式算法,其中采用增强差分进化算法优化无人机群轨迹,采用交替优化算法优化协同反射波束形成矢量。数值结果验证了该算法在无人机群能耗方面优于几种选定的先进算法。此外,还研究了不同IRS单元个数下的网络性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
UAV Swarm Trajectory and Cooperative Beamforming Design in Double-IRS Assisted Wireless Communications
Non-terrestrial communications have emerged as a technological enabler for seamless connectivity and ubiquitous computation services in the upcoming beyond fifth generation (B5G) and sixth generation (6G) networks. However, there exist numerous practical technical limitations, such as high deployment cost, massive energy consumption, high probability of information transmission blockage and dynamic propagation environments and so forth. Thanks to the rapid developments of meta-materials, the cost-effective and energy-efficiency intelligent reconfigurable surface (IRS) has been globally recognized as a revolutionized technology to construct smart radio environments. In this paper, a novel double-IRS assisted unmanned aerial vehicles (UAV)-swarm-enabled communication network architecture is proposed, where two UAV swarms are integrated with the main IRS reflector and subreflector, respectively. The energy minimization problem of UAV swarm carried main IRS is formulated, subject to a list of quality of service (QoS) constraints. To tackle the formulated challenging problem, we first decouple the original problem into two subproblems. Then, a heuristic algorithm is proposed, where the enhanced differential evolution (DE) algorithm is proposed to optimize the UAV swarm trajectory and the alternate optimization algorithm is utilized to optimize the cooperative reflect beamforming vector. Numerical results validate that the proposed algorithm outperforms several selected advanced algorithms regarding UAV swarm energy consumption. Moreover, the network performance under the different number of IRS elements is investigated.
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