论文标题

混合物的双跳下无线光学通信系统的性能分析

Performance Analysis of Dual-Hop Underwater Wireless Optical Communication Systems over Mixture Exponential-Generalized Gamma Turbulence Channels

论文作者

Zedini, Emna, Kammoun, Abla, Soury, Hamza, Hamdi, Mounir, Alouini, Mohamed-Slim

论文摘要

在这项工作中,我们提出了一个统一的框架,用于在存在气泡和温度梯度的情况下具有放大和前向固定增益继电器的双跳下无线光学通信(UWOC)系统的性能分析。 UWOC在杂差检测或强度调制下运行,由统一的混合物指数式伽马分布建模,我们根据在室内实验室设置中进行的实验提出的统一混合物指数,伽马分布,并已证明可以在经过考虑的实验室通道场景下与测量数据提供出色的拟合。更具体地说,我们在双变量FOX的H函数方面以精确的闭合形式得出了端到端信噪比(SNR)的累积分布函数(CDF)和概率密度函数。基于此CDF的表达,我们为基本性能指标(例如中断概率,各种调制方案的平均比特率(BER))提供了新的结果。此外,根据简单功能,获得了非常紧密的渐近结果和高SNR时的平均BER。此外,与单个UWOC链路相比,我们证明双跳UWOC系统可以有效地减轻短范围,温度梯度和气泡引起的湍流。所有结果均通过基于计算机的蒙特卡洛模拟进行验证。

In this work, we present a unified framework for the performance analysis of dual-hop underwater wireless optical communication (UWOC) systems with amplify-and-forward fixed gain relays in the presence of air bubbles and temperature gradients. Operating under either heterodyne detection or intensity modulation with direct detection, the UWOC is modeled by the unified mixture Exponential-Generalized Gamma distribution that we have proposed based on an experiment conducted in an indoor laboratory setup and has been shown to provide an excellent fit with the measured data under the considered lab channel scenarios. More specifically, we derive the cumulative distribution function (CDF) and the probability density function of the end-to-end signal-to-noise ratio (SNR) in exact closed-form in terms of the bivariate Fox's H function. Based on this CDF expression, we present novel results for the fundamental performance metrics such as the outage probability, the average bit-error rate (BER) for various modulation schemes, and the ergodic capacity. Additionally, very tight asymptotic results for the outage probability and the average BER at high SNR are obtained in terms of simple functions. Furthermore, we demonstrate that the dual-hop UWOC system can effectively mitigate the short range and both temperature gradients and air bubbles induced turbulences, as compared to the single UWOC link. All the results are verified via computer-based Monte-Carlo simulations.

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