TY - GEN
T1 - Integration of Satellite and Vehicular Networks
T2 - 2026 International Conference on Intelligent Systems, Communications and Computer Networks, ISCCN 2026
AU - Cao, Wanke
AU - Gao, Zhihao
AU - Liu, Ruifeng
AU - Bai, Chunlong
AU - Wang, Wenwei
AU - Wang, Ye
AU - Si, Hai
N1 - Publisher Copyright:
© 2026 IEEE.
PY - 2026
Y1 - 2026
N2 - Satellite communications are emerging as a critical enabler for next-generation wireless systems, alongside the rapid advancement of intelligent connected vehicles (ICVs). However, the rigorous latency and reliability demands of autonomous driving often exceed traditional satellite capabilities, as these two domains have largely evolved independently. To address this gap, this paper examines the convergence of satellite and vehicular networks from an application-oriented perspective. First, we chart the architectural evolution of satellite-based vehicular networks from 4G independence to 6G native integration. Adopting a bottom-up logical structure, we then systematically analyze the core enabling technologies: we begin by exploring connectivity optimization strategies for high-dynamic links to ensure seamless access; we then advance to end-edge-cloud collaborative computing frameworks designed to overcome onboard hardware constraints; and finally, we detail resilient security provisioning mechanisms that safeguard the decentralized data ecosystem. By synthesizing these technologies and highlighting unresolved challenges - such as dual-dynamic channel modeling and cross-layer resource orchestration - this survey offers a comprehensive, strategic blueprint for the future of intelligent space-terrestrial mobility.
AB - Satellite communications are emerging as a critical enabler for next-generation wireless systems, alongside the rapid advancement of intelligent connected vehicles (ICVs). However, the rigorous latency and reliability demands of autonomous driving often exceed traditional satellite capabilities, as these two domains have largely evolved independently. To address this gap, this paper examines the convergence of satellite and vehicular networks from an application-oriented perspective. First, we chart the architectural evolution of satellite-based vehicular networks from 4G independence to 6G native integration. Adopting a bottom-up logical structure, we then systematically analyze the core enabling technologies: we begin by exploring connectivity optimization strategies for high-dynamic links to ensure seamless access; we then advance to end-edge-cloud collaborative computing frameworks designed to overcome onboard hardware constraints; and finally, we detail resilient security provisioning mechanisms that safeguard the decentralized data ecosystem. By synthesizing these technologies and highlighting unresolved challenges - such as dual-dynamic channel modeling and cross-layer resource orchestration - this survey offers a comprehensive, strategic blueprint for the future of intelligent space-terrestrial mobility.
KW - collaborative computing
KW - non-terrestrial networks
KW - satellite-vehicular networks
KW - ubiquitous connectivity
UR - https://www.scopus.com/pages/publications/105043983313
U2 - 10.1109/ISCCN69074.2026.11564456
DO - 10.1109/ISCCN69074.2026.11564456
M3 - Conference contribution
AN - SCOPUS:105043983313
T3 - 2026 International Conference on Intelligent Systems, Communications and Computer Networks, ISCCN 2026
SP - 92
EP - 100
BT - 2026 International Conference on Intelligent Systems, Communications and Computer Networks, ISCCN 2026
PB - Institute of Electrical and Electronics Engineers Inc.
Y2 - 24 April 2026 through 26 April 2026
ER -