Downlink Coverage and Rate Analysis of Low Earth Orbit Satellite Constellations Using Stochastic Geometry
arXiv:2004.13378 · doi:10.1109/TCOMM.2020.2990993
Abstract
As low Earth orbit (LEO) satellite communication systems are gaining increasing popularity, new theoretical methodologies are required to investigate such networks' performance at large. This is because deterministic and location-based models that have previously been applied to analyze satellite systems are typically restricted to support simulations only. In this paper, we derive analytical expressions for the downlink coverage probability and average data rate of generic LEO networks, regardless of the actual satellites' locality and their service area geometry. Our solution stems from stochastic geometry, which abstracts the generic networks into uniform binomial point processes. Applying the proposed model, we then study the performance of the networks as a function of key constellation design parameters. Finally, to fit the theoretical modeling more precisely to real deterministic constellations, we introduce the effective number of satellites as a parameter to compensate for the practical uneven distribution of satellites on different latitudes. In addition to deriving exact network performance metrics, the study reveals several guidelines for selecting the design parameters for future massive LEO constellations, e.g., the number of frequency channels and altitude.
Accepted for publication in the IEEE Transactions on Communications in April 2020
Cited by in corpus (9)
- An Outlook on the Future Marine Traffic Management System for Autonomous Ships
- When Satellites Work as Eavesdroppers
- Performance Analysis of Integrated Sensing and Communication Networks with Blockage Effects
- An Analytical Model for Coordinated Multi-Satellite Joint Transmission System
- Downlink Performance of Cell-Free Massive MIMO for LEO Satellite Mega-Constellation
- Stochastic Geometry-Based Performance Evaluation for LEO Satellite-Assisted Space Caching
- Integrated Communication and Navigation for Ultra-Dense LEO Satellite Networks: Vision, Challenges and Solutions
- Cooperative Beam Hopping for Accurate Positioning in Ultra-Dense LEO Satellite Networks
- On the Terminal Location Uncertainty in Elliptical Footprints: Application in Air-to-Ground Links