Uplink Performance Analysis of Heterogeneous Non-Terrestrial Networks in Harsh Environments: A Novel Stochastic Geometry Model

IF 8.3 2区 计算机科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Communications Pub Date : 2025-01-15 DOI:10.1109/TCOMM.2025.3529266
Wen-Yu Dong;Shaoshi Yang;Sheng Chen
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Abstract

In harsh environments, such as mountainous terrain, dense vegetation and urban landscapes, a single type of unmanned aerial vehicles (UAVs) may encounter challenges like flight restrictions, difficulty in task execution or increased risk. Therefore, employing multiple types of UAVs to collaborate along with satellite assistance, becomes essential in such scenarios. In this context, we present a stochastic geometry based approach for modeling the heterogeneous non-terrestrial networks (NTNs) by using the classical binomial point process and introducing a novel point process, called Matérn hard-core cluster process (MHCCP) which possesses both properties of exclusivity and clustering. Through simulations, MHCCP has been validated as a more suitable model for UAV groups composed of multiple clusters, compared with traditional point processes such as Poisson point process, binomial point process, and Poisson cluster process. This is because MHCCP ensures inter-cluster repulsion while effectively capturing the clustered distribution observed in practical scenarios. Then, taking into account the influence of terrain shadows on the aerial-satellite links in low-altitude harsh environments, we derive closed-form expressions of the outage probability and average ergodic rate for the aerial-to-satellite uplink of heterogeneous NTNs. Unlike existing studies, our analysis adopts an advanced system configuration that combines beamforming with frequency division multiple access and incorporates a shadowed-Rician fading model to accurately capture signal fading under complex environmental conditions. Furthermore, we investigate link performance in the presence of co-channel interference. Monte Carlo simulations validate that the derived closed-form solutions of the outage probability and the average ergodic rate provide a precise quantitative tool for evaluating the reliability and transmission efficiency of the aerial-satellite links, offering deeper insights into system performance in complex environments.
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恶劣环境下异构非地面网络的上行链路性能分析:新型随机几何模型
在山区地形、茂密植被和城市景观等恶劣环境中,单一类型的无人机可能会遇到飞行限制、任务执行困难或风险增加等挑战。因此,在这种情况下,采用多种类型的无人机与卫星辅助一起协作变得至关重要。在此背景下,我们提出了一种基于随机几何的方法来建模异构非地面网络(NTNs),该方法采用经典的二项式点过程,并引入了一种新的点过程,称为mat硬核聚类过程(MHCCP),该过程具有排他性和聚类性。仿真结果表明,与泊松点过程、二项点过程和泊松聚类过程等传统点过程相比,MHCCP模型更适合多聚类组成的无人机群。这是因为MHCCP确保了簇间排斥,同时有效地捕获了实际场景中观察到的簇分布。然后,考虑地形阴影对低空恶劣环境下航星链路的影响,推导了非均质ntn的航星上行中断概率和平均遍历率的封闭表达式。与现有研究不同,我们的分析采用了一种先进的系统配置,将波束形成与频分多址相结合,并结合了阴影-专家衰落模型,以准确捕获复杂环境条件下的信号衰落。此外,我们还研究了存在同信道干扰时的链路性能。蒙特卡罗模拟验证了导出的中断概率和平均遍历率的封闭形式解,为评估航星链路的可靠性和传输效率提供了精确的定量工具,为复杂环境下的系统性能提供了更深入的见解。
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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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