TY - JOUR
T1 - LEO Satellite Access Network (LEO-SAN) Toward 6G
T2 - Challenges and Approaches
AU - Xiao, Zhenyu
AU - Yang, Junyi
AU - Mao, Tianqi
AU - Xu, Chong
AU - Zhang, Rui
AU - Han, Zhu
AU - Xia, Xiang Gen
N1 - Publisher Copyright:
© 2002-2012 IEEE.
PY - 2024/4/1
Y1 - 2024/4/1
N2 - With the rapid development of satellite communication technologies, the space-based access network has been envisioned as a promising complementary part of the future 6G network. Aside from terrestrial base stations, satellite nodes, especially the low-earth-orbit (LEO) satellites, can also serve as base stations for Internet access, and constitute the LEO-satellite access network (LEO-SAN). LEO-SAN is expected to provide seamless massive access and extended coverage with high signal quality. However, its practical implementation still faces significant technical challenges, such as high mobility and limited budget for communication payloads of LEO satellite nodes. This article aims at revealing the main technical issues that have not been fully addressed by the existing LEO-SAN designs, from three aspects namely random access, beam management and Doppler-resistant transmission technologies. More specifically, the critical issues of random access in LEO-SAN are discussed regarding low flexibility, long transmission delay, and inefficient handshakes. Then the beam management for LEO-SAN is investigated in complex propagation environments under the constraints of high mobility and limited payload budget. Furthermore, the influence of Doppler shifts on LEO-SAN is explored. Correspondingly, promising technologies to address these challenges are also discussed, respectively. Finally, the future research directions are envisioned.
AB - With the rapid development of satellite communication technologies, the space-based access network has been envisioned as a promising complementary part of the future 6G network. Aside from terrestrial base stations, satellite nodes, especially the low-earth-orbit (LEO) satellites, can also serve as base stations for Internet access, and constitute the LEO-satellite access network (LEO-SAN). LEO-SAN is expected to provide seamless massive access and extended coverage with high signal quality. However, its practical implementation still faces significant technical challenges, such as high mobility and limited budget for communication payloads of LEO satellite nodes. This article aims at revealing the main technical issues that have not been fully addressed by the existing LEO-SAN designs, from three aspects namely random access, beam management and Doppler-resistant transmission technologies. More specifically, the critical issues of random access in LEO-SAN are discussed regarding low flexibility, long transmission delay, and inefficient handshakes. Then the beam management for LEO-SAN is investigated in complex propagation environments under the constraints of high mobility and limited payload budget. Furthermore, the influence of Doppler shifts on LEO-SAN is explored. Correspondingly, promising technologies to address these challenges are also discussed, respectively. Finally, the future research directions are envisioned.
UR - http://www.scopus.com/inward/record.url?scp=85185385694&partnerID=8YFLogxK
U2 - 10.1109/MWC.011.2200310
DO - 10.1109/MWC.011.2200310
M3 - Article
AN - SCOPUS:85185385694
SN - 1536-1284
VL - 31
SP - 89
EP - 96
JO - IEEE Wireless Communications
JF - IEEE Wireless Communications
IS - 2
ER -