认知星航网络中抖动无人机的鲁棒保密性高能效波束形成

IF 5.7 2区 计算机科学 Q1 ENGINEERING, AEROSPACE
Jian Ouyang;Jing Ding;Runan Wang;Bai Zhao;Min Lin
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引用次数: 0

摘要

认知卫星-空中网络(CSAN)是将卫星网络与无人机网络在同一频带上进行集成的网络,被认为是下一代异构网络的一种很有前途的网络结构。然而,CSAN的可靠性受到窃听风险、无人机能量限制和固有抖动效应的影响。为了克服这些挑战,我们的目标是设计鲁棒波束形成(BF)方案,以最大限度地提高抖动无人机的保密能量效率(SEE),同时满足无人机发射功率约束和卫星地面站干扰限制。具体而言,分别针对确定性抖动模型和概率抖动模型建立了最坏情况下鲁棒SEE最大化问题(WC-RSEEM)和中断约束下鲁棒SEE最大化问题(OC-RSEEM)。对于WC-RSEEM,我们推导了一种基于二阶泰勒级数展开(STSE)的方法,将抖动误差的复三角形式近似为二次形式。在此基础上,利用s -过程将原非凸问题转化为凸问题,并提出了一种基于迭代罚函数的连续凸逼近(PF-SCA)算法来求解无人机波束形成器。对于OC-RSEEM,通过将STSE近似与bernstein型不等式相结合,将原问题转化为可由两级迭代算法处理的确定性形式。该算法将内层问题重组为发射功率最小化问题,采用PF-SCA方法求解;将外层问题重组为单变量优化问题,采用黄金搜索方法求解。仿真结果验证了所提鲁棒BF方案的优越性和鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Robust Secrecy-Energy Efficient Beamforming for Jittering UAV in Cognitive Satellite-Aerial Networks
Cognitive satellite-aerial network (CSAN), integrating the satellite (SAT) network with the unmanned aerial vehicle (UAV) network in the same frequency band, is regarded as a promising architecture for next-generation heterogeneous networks. However, the CSAN reliability is compromised by the eavesdropping risks, UAV energy limitations and inherent jitter effects. To overcome these challenges, our aim is to design robust beamforming (BF) schemes to maximize the secrecy energy efficiency (SEE) of jittering UAV while satisfying both UAV transmit power constraint and SAT earth station interference limitation. Specifically, the worst-case robust SEE maximization (WC-RSEEM) and the outage-constrained robust SEE maximization (OC-RSEEM) problems are formulated for the deterministic and the probabilistic jittering models, respectively. For WC-RSEEM, we derive a second-order Taylor series expansion (STSE)-based approach to approximate the complex trigonometric form in terms of jitter errors into a quadratic form. Based on this result, we convert the original non-convex problem into a convex one by utilizing S-Procedure and propose an iterative penalty function-based successive convex approximation (PF-SCA) algorithm to obtain the UAV beamformer. For OC-RSEEM, by combining STSE approximation with Bernstein-type inequalities, the original problem is transformed into a deterministic form that can be handled by a two-level iterative algorithm. In this algorithm, the innerlevel problem is reorganized as a transmit power minimization problem, which is solved by the PF-SCA approach, whereas the outer-level problem is recast as a singlevariable optimization problem, which is solved by the golden search method. Simulation results validate the superiority and robustness of the proposed robust BF schemes.
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来源期刊
CiteScore
7.80
自引率
13.60%
发文量
433
审稿时长
8.7 months
期刊介绍: IEEE Transactions on Aerospace and Electronic Systems focuses on the organization, design, development, integration, and operation of complex systems for space, air, ocean, or ground environment. These systems include, but are not limited to, navigation, avionics, spacecraft, aerospace power, radar, sonar, telemetry, defense, transportation, automated testing, and command and control.
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