TY - JOUR
T1 - Ergodic Capacity Analysis for Terrestrial-LEO-GEO Relay Systems With Stochastic Orbit Modeling
AU - Li, Tingting
AU - Zhao, Hui
AU - Zhang, Rui
AU - Pan, Gaofeng
N1 - Publisher Copyright:
© 1967-2012 IEEE.
PY - 2025
Y1 - 2025
N2 - This paper investigates an uplink transmission from a terrestrial user to a geostationary Earth orbit (GEO) satellite, using multiple low Earth orbit (LEO) satellites as amplify-and-forward (AF) relays. We first model the altitudes of LEO spherical orbits as a one-dimensional stochastic point process, where multiple satellites are randomly and uniformly distributed along each orbit. Then, we derive an approximate expression for the ergodic capacity by introducing a novel stochastic geometry-based analytical approach, which effectively captures the impact of random satellite distributions on system performance. Using this approximation method, we also derive the ergodic capacity accounting for the one-dimensional Poisson point process (PPP) and the terrestrial-satellite channel modelled with Rician-shadowed fading. Finally, the accuracy of the derived expressions is validated through Monte Carlo simulations, and the results further confirm that the one-dimensional PPP can accurately approximate the delivery performance even when a reasonable minimum inter-orbit distance for LEO satellites is considered.
AB - This paper investigates an uplink transmission from a terrestrial user to a geostationary Earth orbit (GEO) satellite, using multiple low Earth orbit (LEO) satellites as amplify-and-forward (AF) relays. We first model the altitudes of LEO spherical orbits as a one-dimensional stochastic point process, where multiple satellites are randomly and uniformly distributed along each orbit. Then, we derive an approximate expression for the ergodic capacity by introducing a novel stochastic geometry-based analytical approach, which effectively captures the impact of random satellite distributions on system performance. Using this approximation method, we also derive the ergodic capacity accounting for the one-dimensional Poisson point process (PPP) and the terrestrial-satellite channel modelled with Rician-shadowed fading. Finally, the accuracy of the derived expressions is validated through Monte Carlo simulations, and the results further confirm that the one-dimensional PPP can accurately approximate the delivery performance even when a reasonable minimum inter-orbit distance for LEO satellites is considered.
KW - Amplify-and-forward relaying
KW - ergodic capacity
KW - stochastic point process
KW - terrestrial-LEO-GEO system
UR - http://www.scopus.com/pages/publications/105009303822
U2 - 10.1109/TVT.2025.3582946
DO - 10.1109/TVT.2025.3582946
M3 - Article
AN - SCOPUS:105009303822
SN - 0018-9545
JO - IEEE Transactions on Vehicular Technology
JF - IEEE Transactions on Vehicular Technology
ER -