Temporal-Assisted Beamforming and Trajectory Prediction in Sensing-Enabled UAV Communications

IF 8.3 2区 计算机科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Communications Pub Date : 2024-12-18 DOI:10.1109/TCOMM.2024.3519546
Shengcai Zhou;Halvin Yang;Luping Xiang;Kun Yang
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Abstract

In the evolving landscape of high-speed communication, the shift from traditional pilot-based methods to a Sensing-Oriented Approach (SOA) is anticipated to gain momentum. This paper delves into the development of an innovative Integrated Sensing and Communication (ISAC) framework, specifically tailored for beamforming and trajectory prediction processes. Central to this research is the exploration of an Unmanned Aerial Vehicle (UAV)-enabled communication system, which seamlessly integrates ISAC technology. This integration underscores the synergistic interplay between sensing and communication capabilities. The proposed system initially deploys omnidirectional beams for the sensing-focused phase, subsequently transitioning to directional beams for precise object tracking. This process incorporates an Extended Kalman Filtering (EKF) methodology for the accurate estimation and prediction of object states. A novel frame structure is introduced, employing historical sensing data to optimize beamforming in real-time for subsequent time slots, a strategy we refer to as ‘temporal-assisted’ beamforming. To refine the temporal-assisted beamforming technique, we employ Successive Convex Approximation (SCA) in tandem with Iterative Rank Minimization (IRM), yielding high-quality suboptimal solutions. Comparative analysis with conventional pilot-based systems reveals that our approach yields a substantial improvement of 156% in multi-object scenarios and 136% in single-object scenarios.
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感知无人机通信中的时序辅助波束成形和轨迹预测
在不断发展的高速通信环境中,从传统的基于试验的方法向面向感知的方法(SOA)的转变预计将获得动力。本文深入研究了一种创新的集成传感和通信(ISAC)框架的发展,专门为波束形成和轨迹预测过程量身定制。这项研究的核心是探索一种无人机(UAV)通信系统,该系统可以无缝集成ISAC技术。这种整合强调了传感和通信能力之间的协同相互作用。该系统最初部署全向波束用于传感聚焦阶段,随后过渡到定向波束用于精确目标跟踪。该过程采用扩展卡尔曼滤波(EKF)方法来准确估计和预测目标状态。介绍了一种新的帧结构,利用历史传感数据实时优化后续时隙的波束形成,我们称之为“时间辅助”波束形成策略。为了改进时间辅助波束形成技术,我们将连续凸近似(SCA)与迭代秩最小化(IRM)结合使用,产生高质量的次优解。与传统的基于飞行员的系统进行比较分析表明,我们的方法在多目标场景下产生了156%的显著改进,在单目标场景下产生了136%的显著改进。
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来源期刊
IEEE Transactions on Communications
IEEE Transactions on Communications 工程技术-电信学
CiteScore
16.10
自引率
8.40%
发文量
528
审稿时长
4.1 months
期刊介绍: The IEEE Transactions on Communications is dedicated to publishing high-quality manuscripts that showcase advancements in the state-of-the-art of telecommunications. Our scope encompasses all aspects of telecommunications, including telephone, telegraphy, facsimile, and television, facilitated by electromagnetic propagation methods such as radio, wire, aerial, underground, coaxial, and submarine cables, as well as waveguides, communication satellites, and lasers. We cover telecommunications in various settings, including marine, aeronautical, space, and fixed station services, addressing topics such as repeaters, radio relaying, signal storage, regeneration, error detection and correction, multiplexing, carrier techniques, communication switching systems, data communications, and communication theory. Join us in advancing the field of telecommunications through groundbreaking research and innovation.
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