基于多个 HAPS 的 FSO/RF 空地混合网络性能分析

D. Singh, Swaminathan Ramabadran, Aravind Marrapu, A. Madhukumar
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引用次数: 0

摘要

预计第六代(6G)网络将通过扩展网络功能和连接性来支持数据需求日益增长的应用。自由空间光学(FSO)通信与空-空-地(SAG)网络成为满足 6G 网络巨大流量需求和无处不在的连接要求的潜在解决方案。尽管 FSO 通信具有各种优势,如高带宽可用性、大容量未授权频谱、更好的安全性等,但 FSO 链路对大气湍流、衰减和指向误差的响应程度很高。因此,为了减轻严重的大气影响,我们提出了一种基于多个高空平台站(HAPS)的 SAG 网络,其中 HAPS 充当地面站和卫星之间的解码前向(DF)中继节点。我们考虑了连接地面站和 HAPS 节点的 FSO/ 射频(RF)混合链路,以及 HAPS 和卫星之间的 FSO 链路。拟议 SAG 网络的性能分析包括评估中断概率和平均符号错误率 (SER),考虑到指向错误的存在,并假设 FSO 采用马拉加分布,RF 链路采用阴影 k - µ 衰减分布。此外,还进行了渐近分析,以确定拟议系统的分集增益。数值结果表明,所提出的基于多 HAPS 的 FSO/RF 混合 SAG 网络优于文献中现有的所有其他基于 HAPS 的 SAG 网络模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance Analysis of Multiple HAPS-Based Hybrid FSO/RF Space-Air-Ground Network
Sixth generation (6G) networks are anticipated to support increasingly data-hungry applications by expanding the network capabilities and connectivity. Free space optics (FSO) communication with space-air-ground (SAG) network becomes a potential solution to meet the enormous traffic demands and ubiquitous connectivity requirement in 6G networks. In spite of various advantages offered by FSO communication such as high bandwidth availability, large unlicensed spectrum, better security, etc., the FSO link exhibits a high degree of responsiveness to atmospheric turbulence, attenuation, and pointing errors. Thus to mitigate the severe atmospheric effects, we propose a multiple high-altitude platform station (HAPS)-based SAG network, where HAPS functions as a decode-and-forward (DF) relay node between ground station and satellite. We take into account a hybrid FSO/radio frequency (RF) link for connecting ground station and HAPS nodes and an FSO link between HAPS and satellite. The performance analysis of the proposed SAG network involves evaluating the outage probability and average symbol error rate (SER) considering the presence of pointing errors and assuming Málaga distribution in case of FSO and shadowed k - µ fading distribution in case of RF link. Furthermore, asymptotic analysis is conducted to determine the diversity gain of the proposed system. Numerical results demonstrate that the proposed multiple HAPS-based hybrid FSO/RF SAG network outperforms all other existing HAPS-based SAG network models in the literature.
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