考虑综合衰减损失的irs辅助水下OWC统一信道模型

Yalçın Ata;Xiang Yi;Yuxuan Li;Xinyue Tao;Anna Maria Vegni
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引用次数: 0

摘要

在水下环境中,无线信号的传播非常具有挑战性,并且受到吸收和散射衰减损失的强烈影响。光无线通信(OWC)由于带宽大,可以提供高数据速率和中等传播范围,代表了水下场景的可行技术。有几种统计分布可以模拟水下湍流对OWC的影响,如何以更高的精度模拟水下OWC (UOWC)通道仍然是一个有待研究的课题。在本文中,我们研究了使用智能反射面(IRSs)来提高水下OWC系统的性能。在这方面,我们提出了一个统一的UOWC通道模型,同时适用于外差和强度调制/直接检测(IM/DD)方案。推导了平均误码率(BER)、中断概率和信道容量的解析表达式,包括(i)衰减、(ii)湍流、(iii)指向误差和(iv)到达角(AOA)波动的综合影响,保证了水下无线光通信信道的综合表征。为了使分析和结果更加真实,考虑了实际场景和参数。分析得到了水下OWC通道的概率密度函数(PDF)和累积分布函数(CDF)。给出了水下信道和通信系统各种参数的仿真结果。可以看出,在水下无线信道中,IRS的应用仍然是缓解上述现象组合造成的整体衰落效应的重要工具。此外,外差检测相对于IM/DD的优势也得到了证明。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Unified Channel Model for IRS-Aided Underwater OWC With Combined Attenuation Losses
In underwater environment, wireless signal propagation is very challenging, and strongly affected by absorption- and scattering-induced attenuation losses. Optical wireless communications (OWC), due to huge bandwidths, can provide high data rates and medium propagation ranges, representing a viable technology for underwater scenarios. There are several statistical distributions that model the effect of underwater turbulence on OWC, and how to model the underwater OWC (UOWC) channel with higher accuracy is still a topic to investigate. In this paper, we investigate the use of intelligent reflecting surfaces (IRSs) for enhancing performance in underwater OWC systems. In this regard, we present a unified channel model for UOWC, working both for heterodyne and intensity modulated/direct detection (IM/DD) schemes. The analytical expressions of average bit-error-rate (BER), outage probability, and channel capacity are derived including the combined effect of (i) attenuation, (ii) turbulence, (iii) pointing error, and (iv) angle-of-arrival (AOA) fluctuations to ensure the comprehensive characterization of underwater optical wireless communication channel. To make the analysis and results more realistic, the practical scenarios and parameters are considered. The probability density function (PDF) and the cumulative distribution function (CDF) of the underwater OWC channel are obtained analytically. Simulation results are presented for various parameters of underwater channel and communication systems. It is observed that the application of IRS remains as an important tool in terms of mitigating the overall fading effect caused by the combination of previous phenomena in underwater wireless channel. Also, the benefits of heterodyne detection over IM/DD is evinced.
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