Segment routing for traffic engineering and effective recovery in low-earth orbit satellite constellations

被引:5
作者
Zhang, Shengyu [1 ]
Li, Xiaoqian [2 ]
Yeung, Kwan Lawrence [1 ]
机构
[1] Univ Hong Kong, Dept Elect & Elect Engn, Hong Kong, Peoples R China
[2] Univ Elect Sci & Technol China, Natl Key Lab Sci & Technol Commun, Chengdu 611731, Sichuan, Peoples R China
关键词
Fast reroute; Low-earth orbit satellite constellation; Segment routing; Traffic engineering; Traffic splitting; NETWORKS;
D O I
10.1016/j.dcan.2022.09.022
中图分类号
TN [电子技术、通信技术];
学科分类号
0809 ;
摘要
Low-Earth Orbit Satellite Constellations (LEO-SCs) provide global, high-speed, and low latency Internet access services, which bridges the digital divide in the remote areas. As inter-satellite links are not supported in initial deployment (i.e. the Starlink), the communication between satellites is based on ground stations with radio frequency signals. Due to the rapid movement of satellites, this hybrid topology of LEO-SCs and ground stations is time-varying, which imposes a major challenge to uninterrupted service provisioning and network management. In this paper, we focus on solving two notable problems in such a ground station-assisted LEO-SC topology, i.e., traffic engineering and fast reroute, to guarantee that the packets are forwarded in a balanced and uninterrupted manner. Specifically, we employ segment routing to support the arbitrary path routing in LEO-SCs. To solve the traffic engineering problem, we proposed two source routings with traffic splitting algorithms, Delay-Bounded Traffic Splitting (DBTS) and DBTS+, where DBTS equally splits a flow and DBTS + favors shorter paths. Simulation results show that DBTS + can achieve about 30% lower maximum satellite load at the cost of about 10% more delay. To guarantee the fast recovery of failures, two fast reroute mechanisms, Loop-Free Alternate (LFA) and LFA+, are studied, where LFA pre-computes an alternate next-hop as a backup while LFA + finds a 2-segment backup path. We show that LFA + can increase the percentage of protection coverage by about 15%.
引用
收藏
页码:706 / 715
页数:10
相关论文
共 44 条
[1]  
Agarwal S, 2013, IEEE INFOCOM SER, P2211
[2]   MLSR: A novel routing algorithm for multilayered satellite IP networks [J].
Akyildiz, IF ;
Ekici, E ;
Bender, MD .
IEEE-ACM TRANSACTIONS ON NETWORKING, 2002, 10 (03) :411-424
[3]  
americanpiezo, About us
[4]  
Bashandy S.P.B., 2019, RFC 8660
[5]  
Bhatia Randeep, 2015, 2015 IEEE Conference on Computer Communications (INFOCOM). Proceedings, P657, DOI 10.1109/INFOCOM.2015.7218434
[6]  
Chang HS, 1998, IEEE T VEH TECHNOL, V47, P1037, DOI 10.1109/25.704858
[7]   A routing protocol for hierarchical LEO/MEO satellite IP networks [J].
Chen, C ;
Ekici, E .
WIRELESS NETWORKS, 2005, 11 (04) :507-521
[8]   A Comprehensive Simulation Platform for Space-Air-Ground Integrated Network [J].
Cheng, Nan ;
Quan, Wei ;
Shi, Weisen ;
Wu, Huaqing ;
Ye, Qiang ;
Zhou, Haibo ;
Zhuang, Weihua ;
Shen, Xuemin ;
Bai, Bo .
IEEE WIRELESS COMMUNICATIONS, 2020, 27 (01) :178-185
[9]   ULTRA-DENSE LEO: INTEGRATION OF SATELLITE ACCESS NETWORKS INTO 5G AND BEYOND [J].
Di, Boya ;
Song, Lingyang ;
Li, Yonghui ;
Poor, H. Vincent .
IEEE WIRELESS COMMUNICATIONS, 2019, 26 (02) :62-69
[10]   Ultra-Dense LEO: Integrating Terrestrial-Satellite Networks Into 5G and Beyond for Data Offloading [J].
Di, Boya ;
Zhang, Hongliang ;
Song, Lingyang ;
Li, Yonghui ;
Li, Geoffrey Ye .
IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS, 2019, 18 (01) :47-62