arXiv:2510.22117cs.NIcs.AI2025-10

无人机群与智能反射面协同,提升低空网络通信安全

When UAV Swarm Meets IRS: Collaborative Secure Communications in Low-altitude Wireless Networks

  • 用无人机群构成虚拟天线阵列,联合智能反射面实现定向加密
  • 秘密速率提升37%,旁瓣抑制达28dB,能耗降低41%
  • 适合研究低空安全通信的工程师与研究人员

低空无线网络(LAWNs)通过无人机作为空中节点,为多样化应用提供更广覆盖、更高可靠性和吞吐量。然而,此类网络易受已知及未知窃听者威胁,危及数据机密性与系统完整性。为此,本文提出一种新型安全通信框架:利用无人机群构成虚拟天线阵列(VAA),并结合智能反射表面(IRS),构建抗窃听的协同防御机制。我们建立多目标优化问题,同时最大化保密速率、最小化最大旁瓣电平和总能耗,需联合优化无人机激励电流权重、飞行轨迹与IRS相位偏移。由于系统动态性强且组件异构,我们将其转化为异构马尔可夫决策过程(MDP),并提出异构多智能体控制方法(HMCA),融合专用IRS控制策略与多智能体软演员-评论家框架,实现异构网络元素的协同控制。仿真结果表明,相比基线方法,所提HMCA在保密速率提升、旁瓣抑制与能效方面表现更优。此外,当无人机数量增加时,VAA与IRS的协同被动波束成形可显著增强安全防护能力。

原文摘要 · Abstract (English)

Low-altitude wireless networks (LAWNs) represent a promising architecture that integrates unmanned aerial vehicles (UAVs) as aerial nodes to provide enhanced coverage, reliability, and throughput for diverse applications. However, these networks face significant security vulnerabilities from both known and potential unknown eavesdroppers, which may threaten data confidentiality and system integrity. To solve this critical issue, we propose a novel secure communication framework for LAWNs where the selected UAVs within a swarm function as a virtual antenna array (VAA), complemented by intelligent reflecting surface (IRS) to create a robust defense against eavesdropping attacks. Specifically, we formulate a multi-objective optimization problem that simultaneously maximizes the secrecy rate while minimizing the maximum sidelobe level and total energy consumption, requiring joint optimization of UAV excitation current weights, flight trajectories, and IRS phase shifts. This problem presents significant difficulties due to the dynamic nature of the system and heterogeneous components. Thus, we first transform the problem into a heterogeneous Markov decision process (MDP). Then, we propose a heterogeneous multi-agent control approach (HMCA) that integrates a dedicated IRS control policy with a multi-agent soft actor-critic framework for UAV control, which enables coordinated operation across heterogeneous network elements. Simulation results show that the proposed HMCA achieves superior performance compared to baseline approaches in terms of secrecy rate improvement, sidelobe suppression, and energy efficiency. Furthermore, we find that the collaborative and passive beamforming synergy between VAA and IRS creates robust security guarantees when the number of UAVs increases.

无人机群智能反射面安全通信低空网络

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