Zhang Yan, Wang Yong, Hu Yihua, Lin Zhi, Zhai Yadi, Wang Lei, Zhao Qingsong, Wen Kang, Kang Linshuang
College of Electronic Engineering, National University of Defense Technology, Hefei 230037, China.
Anhui Province Key Laboratory of Electronic Restriction, Hefei 230037, China.
Sensors (Basel). 2022 Sep 26;22(19):7286. doi: 10.3390/s22197286.
Low Earth orbit satellite constellation networks (LSCNs) have attracted significant attention around the world due to their great advantages of low latency and wide coverage, but they also bring new challenges to network security. Distributed denial of service (DDoS) attacks are considered one of the most threatening attack methods in the field of Internet security. In this paper, a space-time graph model is built to identify the key nodes in LSCNs, and a DDoS attack is adopted as the main means to attack the key nodes. The scenarios of two-satellite-key-node and multi-satellite-key-node attacks are considered, and their security performance against DDoS attacks is also analyzed. The simulation results show that the transmission path of key satellite nodes will change rapidly after being attacked, and the average end-to-end delay and packet loss are linearly related to the number of key-node attacks. This work provides a comprehensive analysis of the security performance of LSCNs under a DDoS attack and theoretical support for future research on anti-DDoS attack strategies for LSCNs.
低地球轨道卫星星座网络(LSCNs)因其低延迟和广泛覆盖的巨大优势而在全球引起了广泛关注,但它们也给网络安全带来了新的挑战。分布式拒绝服务(DDoS)攻击被认为是互联网安全领域中最具威胁性的攻击方法之一。本文构建了一个时空图模型来识别LSCNs中的关键节点,并采用DDoS攻击作为攻击关键节点的主要手段。考虑了双卫星关键节点攻击和多卫星关键节点攻击的场景,并分析了它们抵御DDoS攻击的安全性能。仿真结果表明,关键卫星节点的传输路径在受到攻击后会迅速变化,平均端到端延迟和丢包率与关键节点攻击数量呈线性关系。这项工作为DDoS攻击下LSCNs的安全性能提供了全面分析,并为未来LSCNs抗DDoS攻击策略的研究提供了理论支持。