TY - JOUR
T1 - System-Level Performance Analysis of LoRa-Based LEO Satellite Constellations for IoT Communications
AU - Yu, Quantao
AU - Mishra, Deepak
AU - Wang, Hua
AU - He, Dongxuan
AU - Yuan, Jinhong
AU - Matthaiou, Michail
N1 - Publisher Copyright:
© 2012 IEEE.
PY - 2025
Y1 - 2025
N2 - In this letter, we propose a novel spherical stochastic geometry (SG)-based analytical framework for characterizing the system-level performance of Long-Range (LoRa)-based low Earth orbit (LEO) satellite constellations. Specifically, the LEO satellite constellations and the terrestrial LoRa end-devices (EDs) are modeled by a Binomial point process (BPP) and Poisson point process (PPP), respectively. Tractable analytical expressions are derived for the uplink coverage probability and area spectral efficiency, where the trends of both performance metrics are unveiled with respect to the EDs’ density and the spreading factor (SF). In particular, the uplink coverage probability and the area spectral efficiency is proven to be a monotonically decreasing function and a unimodal function of the EDs’ density, respectively. Numerical simulations not only verify our theoretical analysis but also provide some useful insights into the practical design and implementation of LoRa-based LEO satellite constellations for Internet of Things (IoT) communications.
AB - In this letter, we propose a novel spherical stochastic geometry (SG)-based analytical framework for characterizing the system-level performance of Long-Range (LoRa)-based low Earth orbit (LEO) satellite constellations. Specifically, the LEO satellite constellations and the terrestrial LoRa end-devices (EDs) are modeled by a Binomial point process (BPP) and Poisson point process (PPP), respectively. Tractable analytical expressions are derived for the uplink coverage probability and area spectral efficiency, where the trends of both performance metrics are unveiled with respect to the EDs’ density and the spreading factor (SF). In particular, the uplink coverage probability and the area spectral efficiency is proven to be a monotonically decreasing function and a unimodal function of the EDs’ density, respectively. Numerical simulations not only verify our theoretical analysis but also provide some useful insights into the practical design and implementation of LoRa-based LEO satellite constellations for Internet of Things (IoT) communications.
KW - Internet of Things (IoT)
KW - Long-Range (LoRa)
KW - low Earth orbit (LEO) satellite constellations
KW - performance analysis
KW - stochastic geometry (SG)
UR - https://www.scopus.com/pages/publications/105012717926
U2 - 10.1109/LWC.2025.3591684
DO - 10.1109/LWC.2025.3591684
M3 - Article
AN - SCOPUS:105012717926
SN - 2162-2337
VL - 14
SP - 3279
EP - 3283
JO - IEEE Wireless Communications Letters
JF - IEEE Wireless Communications Letters
IS - 10
ER -