限制干扰的陆地移动卫星通信系统的物理层安全

Vinay Bankey, P. K. Upadhyay, D. B. D. Costa
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引用次数: 10

摘要

在本文中,我们研究了下行陆地移动卫星(LMS)系统的保密性能,其中卫星在地面窃听者存在的情况下向合法用户传输信号。在此,我们考虑在用户目标节点上存在同信道干扰信号。通过利用卫星链路的底层阴影衰落信道和干扰地面链路的Nakagami-m衰落的统计数据,我们得到了所考虑的LMS系统的保密中断概率(SOP)的精确表达式。为了获得更多的见解,我们推导了高信噪比条件下SOP的渐近表达式,并说明了系统即使在干扰的影响下也可以达到统一的分集阶。随后,我们还推导出非零保密能力的概率表达式。通过蒙特卡罗模拟验证了分析结果,并用于揭示各种关键通道/系统参数对理解LMS系统物理层安全方面的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Physical layer security of interference-limited land mobile satellite communication systems
In this paper, we investigate the secrecy performance of a downlink land mobile satellite (LMS) system, where a satellite transmits signal to a legitimate user in the presence of an eavesdropper at the ground. Herein, we consider that co-channel interference signals are present at the user destination node. By leveraging the statistics of underlying Shadowed-Rician fading channels for satellite links and Nakagami-m fading for interfering terrestrial links, we derive an accurate expression for secrecy outage probability (SOP) of the considered LMS system. To gain more insights, we derive an asymptotic expression for SOP at high signal-to-noise ratio regime and illustrate that system can attain a unity diversity order even under the influence of interferers. Subsequently, we also deduce the expression for probability of non-zero secrecy capacity. The analytical results are validated through Monte-Carlo simulations and utilized to reveal the impact of various key channel/system parameters in understanding the physical layer security aspects of LMS system.
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