计算机科学
电子工程
误码率
链路自适应
通信系统
键控
光通信
自由空间光通信
调制(音乐)
传输(电信)
相移键控
备份
强度调制
干扰(通信)
频道(广播)
自适应光学
链接级别
混乱的
编码(社会科学)
正交频分复用
实时计算
比特率
解码方法
正交调幅
混合动力系统
可见光通信
自适应系统
光无线
杠杆(统计)
自适应编码
无线
千兆位
传动系统
计算机网络
幅相键控
通信链路
作者
Ziqiang Li,Yiyi Yang,Dexian Yan,Yi Wang
标识
DOI:10.1109/lpt.2026.3651509
摘要
In response to the problem that free-space optical (FSO) communication in terrestrial-satellite links is susceptible to factors such as atmospheric turbulence, pointing errors, and angle of arrival (AOA) fluctuations, this paper proposes a High-Altitude Platform (HAP)-assisted adaptive combining hybrid FSO/Radio Frequency (RF) terrestrial-satellite links communication system. The system employs FSO as the primary link for the terrestrial-HAP links, with RF serving as an on-demand, activated backup link. At the HAP receiving end, Maximum Ratio Combining (MRC) technology integrates the dual signals to enhance reception quality. At the same time, the HAP-satellite links utilize FSO transmission to leverage their high-speed advantages. At the physical layer, Differential Chaotic Shift Keying (DCSK) modulation is integrated with Bose-Chaudhuri-Hocquenghem (BCH) coding to efficiently suppress channel interference and reduce the Bit Error Rate (BER). The system employs theM-distribution model to simulate light intensity scintillation, atmospheric attenuation, beam wander, pointing error, and AOA fluctuations, and derives the closed-form expression for the BER of the proposed adaptive combining terrestrial-HAP-satellite system. Under typical atmospheric conditions, the influence of different link switching strategies and modulation methods on system performance was analyzed through simulation.
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