Stochastic Geometry Based Modeling and Analysis of Uplink Cooperative Satellite-Aerial-Terrestrial Networks for Nomadic Communications With Weak Satellite Coverage

Wen-Yu Dong;Shaoshi Yang;Ping Zhang;Sheng Chen
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Abstract

Cooperative satellite-aerial-terrestrial networks (CSATNs), where unmanned aerial vehicles (UAVs) are utilized as nomadic aerial relays (A), are highly valuable for many important applications, such as post-disaster urban reconstruction. In this scenario, direct communication between terrestrial terminals (T) and satellites (S) is often unavailable due to poor propagation conditions for satellite signals, and users tend to congregate in regions of finite size. There is a current dearth in the open literature regarding the uplink performance analysis of CSATN operating under the above constraints, and the few contributions on the uplink model terrestrial terminals by a Poisson point process (PPP) relying on the unrealistic assumption of an infinite area. This paper aims to fill the above research gap. First, we propose a stochastic geometry based innovative model to characterize the impact of the finite-size distribution region of terrestrial terminals in the CSATN by jointly using a binomial point process (BPP) and a type-II Matérn hard-core point process (MHCPP). Then, we analyze the relationship between the spatial distribution of the coverage areas of aerial nodes and the finite-size distribution region of terrestrial terminals, thereby deriving the distance distribution of the T-A links. Furthermore, we consider the stochastic nature of the spatial distributions of terrestrial terminals and UAVs, and conduct a thorough analysis of the coverage probability and average ergodic rate of the T-A links under Nakagami fading and the A-S links under shadowed-Rician fading. Finally, the accuracy of our theoretical derivations are confirmed by Monte Carlo simulations. Our research offers fundamental insights into the system-level performance optimization for the realistic CSATNs involving nomadic aerial relays and terrestrial terminals confined in a finite-size region.
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基于随机几何的上行链路卫星-空中-地面合作网络建模与分析,用于卫星覆盖薄弱的游牧通信
协作卫星-空中-地面网络(CSATNs),其中无人驾驶飞行器(uav)被用作游牧空中中继(A),在许多重要应用中具有很高的价值,例如灾后城市重建。在这种情况下,由于卫星信号的传播条件差,地面终端(T)和卫星(S)之间往往无法直接通信,用户往往聚集在有限的区域内。目前公开文献中缺乏对CSATN在上述约束下运行的上行链路性能分析,而泊松点过程(PPP)对上行链路模型地面终端的贡献也很少,该过程依赖于不切实际的无限面积假设。本文旨在填补上述研究空白。首先,我们提出了一个基于随机几何的创新模型,通过联合使用二项式点过程(BPP)和ii型matsamrn硬核点过程(MHCPP)来表征CSATN中有限大小的地面终端分布区域的影响。然后,我们分析了空中节点覆盖区域的空间分布与地面终端有限大小的分布区域之间的关系,从而推导出T-A链路的距离分布。在此基础上,考虑了地面终端和无人机空间分布的随机性,深入分析了T-A链路和a - s链路在Nakagami衰落下的覆盖概率和平均遍历率。最后,通过蒙特卡罗模拟验证了理论推导的准确性。我们的研究为实际csat的系统级性能优化提供了基本的见解,这些csat涉及有限尺寸区域内的游牧民空中中继和地面终端。
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Table of Contents IEEE Communications Society Information Corrections to “Coverage Rate Analysis for Integrated Sensing and Communication Networks” IEEE Journal on Selected Areas in Communications Publication Information Guest Editorial: Integrated Ground-Air-Space Wireless Networks for 6G Mobile—Part II
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