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Underwater optical wireless communications, networking, and localization: A survey

机译:水下光无线通信,网络和本地化:一项调查

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摘要

Underwater wireless communications can be carried out through acoustic, radio frequency (RF), and optical waves. Compared to its bandwidth limited acoustic and RF counterparts, underwater optical wireless communications (UOWCs) can support higher data rates at low latency levels. However, the severe aquatic channel conditions (e.g., absorption, scattering, turbulence, etc.) pose great challenges for UOWCs and significantly reduce the attainable communication ranges, which necessitates efficient networking and localization solutions. Therefore, we provide a comprehensive survey on the challenges, advances, and prospects of underwater optical wireless networks (UOWNs) from a layer by layer perspective which includes: (1) Physical layer issues including propagation characteristics, channel modeling, and modulation techniques (2) Data link layer problems covering link configurations, link budgets, performance metrics, and multiple access schemes; (3) Network layer topics containing relaying techniques and potential routing algorithms; (4) Transport layer subjects such as connectivity, reliability, flow and congestion control; (5) Application layer goals, and (6) Localization and its impacts on UOWN layers. Finally, we outline the open research challenges and point out the prospective directions for underwater optical wireless communications, networking, and localization studies. (C) 2019 Elsevier B.V. All rights reserved.
机译:水下无线通信可以通过声波,射频(RF)和光波进行。与带宽受限的声学和RF同类产品相比,水下光学无线通信(UOWC)可以在低延迟级别下支持更高的数据速率。但是,严峻的水道条件(例如吸收,散射,湍流等)给UOWC带来了巨大挑战,并大大减小了可达到的通信范围,这需要有效的联网和本地化解决方案。因此,我们从逐层的角度对水下光无线网络(UOWN)的挑战,进展和前景进行了全面的调查,其中包括:(1)物理层问题,包括传播特性,信道建模和调制技术(2 )数据链路层问题,包括链路配置,链路预算,性能指标和多路访问方案; (3)包含中继技术和潜在路由算法的网络层主题; (4)传输层的主题,例如连通性,可靠性,流量和拥塞控制; (5)应用层目标,以及(6)本地化及其对UOWN层的影响。最后,我们概述了开放研究的挑战,并指出了水下光学无线通信,网络和本地化研究的未来方向。 (C)2019 Elsevier B.V.保留所有权利。

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