低轨道卫星网络中基于无懈可击的星座设计

Cuiqin Dai, Tao Xu, Hong Tang, Qianbin Chen
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引用次数: 0

摘要

低地球轨道(LEO)卫星网络由于其更广的覆盖范围、更低的延迟和成本效益高的网络能力而受到越来越多的关注。然而,卫星节点或链路可能会受到攻击和失效,节点和链路的故障会对LEO卫星组网造成性能损失。针对这一挑战,本文设计了一种基于无懈可击的LEO卫星星座,以实现更高的无懈可击性和更低的成本。首先,建立了LEO卫星网络模型,通过对动态网络拓扑结构的分析,推导出了建立链路的概率;然后,通过对完全无伤性和成本进行量化来定义无伤性效益,并制定了低轨道卫星星座设计问题,使无伤性效益最大化。在此基础上,提出了一种禁忌搜索遗传算法结合反向学习策略(OBL-TSGA),以获得具有最佳抗毁性效益的合理卫星星座轨道参数。仿真结果表明,所设计的卫星星座能够以较低的成本获得较高的抗干扰性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Invulnerability-Based Constellation Design in LEO Satellite Networks
The low earth orbit (LEO) satellite networks have received increasing attention because of wider coverage, lower latency, and cost-efficient networking capabilities. However, satellite nodes or links may be attacked and invalidated, and the failure of nodes and link poses performance loss to the LEO satellite networking. To address such challenges, in this paper, an invulnerability-based LEO satellite constellation is designed to achieve higher invulnerability and lower cost. Firstly, a LEO satellite network model is established, and the build link probability is derived after analyzing the dynamic network topology. Then, the invulnerability benefit is defined by quantifying complete invulnerability and cost, and the problem of LEO satellite constellation design is formulated to maximize the invulnerability benefit. Following that, a tabu search genetic algorithm combined with opposite-based learning strategy (OBL-TSGA) is proposed to obtain reasonable satellite constellation orbit parameter with the best invulnerability benefit. Simulation results show that the designed satellite constellation can obtain higher invulnerability at a lower cost.
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