前向纠错
自由空间光通信
计算机科学
电子工程
光无线
光通信
无线
误码率
架空(工程)
多路复用
可靠性(半导体)
波分复用
电信
功率(物理)
光学
波长
工程类
物理
解码方法
操作系统
量子力学
作者
Marco A. Fernandes,Gil M. Fernandes,Bruno T. Brandão,Manuel M. Freitas,Nourdin Kaai,Alina Tomeeva,Bas van Der Wielen,John F. Reid,Daniele Raiteri,Paulo P. Monteiro,Fernando P. Guiomar
标识
DOI:10.1109/jlt.2024.3358488
摘要
The future of wireless communication requires the unique capabilities of free-space optics (FSO). Therefore, it is crucial to develop methods for achieving reliable long-distance FSO communications. This study presents a field trial of a 1.8 km FSO link that can achieve 4 Tbps+ using coherent optics, wavelength division multiplexing (WDM), atmospheric turbulence mitigation, and optimized forward error correction (FEC) coding. Our study focuses on the impact of atmospheric turbulence on FSO communication and the methods used to mitigate its effects. We compensate for the turbulence-induced power fluctuations by using an optical pre-amplification technique with automatic power control (APC) to stabilize the received power. This technique reduces the perceived Rytov variance by a factor of ten, making the FSO communication more reliable and efficient. Furthermore, we explore the maximization of net bit-rate by optimising the transmitted channels' FEC overhead, considering two different architectures: individual and joint wavelength processing. The proposed optimization techniques are shown to provide significant gains both in terms of capacity and reliability, making FSO technology a more practical solution for long-range wireless communication.
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