Stochastic Geometry Based Modelling 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

TL;DR
This paper develops a stochastic geometry model to analyze uplink performance in cooperative satellite-aerial-terrestrial networks with finite user regions, addressing a gap in existing models that assume infinite areas.
Contribution
It introduces a novel model combining BPP and MHCPP to characterize finite terrestrial regions and analyzes coverage and rate performance considering realistic spatial distributions.
Findings
Coverage probability analysis under Nakagami fading
Average ergodic rate derivation for T-A links
Model validation through Monte Carlo simulations
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…
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Taxonomy
TopicsSatellite Communication Systems · UAV Applications and Optimization · Spacecraft Design and Technology
