Jurado-Navas Antonio, Álvarez-Roa Carmen, Álvarez-Roa María, Castillo-Vázquez Miguel
Wireless Optical Communications Lab., University Institute of Telecommunication Research (TELMA), University of Malaga, E-29071 Malaga, Spain.
Sensors (Basel). 2022 Mar 23;22(7):2464. doi: 10.3390/s22072464.
In this paper, we analyze a combined terrestrial-underwater optical communication link for providing high-speed optical connectivity between onshore and submerge systems. For this purpose, different transmission signaling schemes were employed to obtain performance results in terms of average bit error rate (ABER). In this sense, from the starting point of a known conditional bit-error-rate (CBER) in the absence of turbulence, the behavior of the entire system is obtained by applying an amplify-and-forward (AF) based dual-hop system: The first link is a terrestrial free-space optical (FSO) system assuming a Málaga distributed turbulence and, the second one, is an underwater FSO system with a Weibull channel model. To obtain performance results, a semi-analytical simulation procedure is applied, using a hyper-exponential fitting technique previously proposed by the authors and leading to BER closed-form expressions and high-accuracy numerical results.
在本文中,我们分析了一种陆基-水下组合光通信链路,用于在陆上系统和水下系统之间提供高速光连接。为此,采用了不同的传输信令方案,以平均误码率(ABER)来获得性能结果。从这个意义上说,从无湍流时已知条件误码率(CBER)的起点出发,通过应用基于放大转发(AF)的双跳系统来获得整个系统的行为:第一条链路是假设为马拉加分布湍流的陆地自由空间光(FSO)系统,第二条链路是具有威布尔信道模型的水下FSO系统。为了获得性能结果,应用了一种半解析模拟程序,使用作者先前提出的超指数拟合技术,得出误码率的闭式表达式和高精度数值结果。