Underwater Optical Wireless Communication
Underwater wireless information transfer is of great interest to the military, industry, and the scientific community, as it plays an important role in tactical surveillance, pollution monitoring, oil control and maintenance, offshore explorations, climate change monitoring, and oceanography researc...
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doaj-12968a1e4cac4b6dbc5063919b4161522021-03-29T19:37:24ZengIEEEIEEE Access2169-35362016-01-0141518154710.1109/ACCESS.2016.25525387450595Underwater Optical Wireless CommunicationHemani Kaushal0Georges Kaddoum1Department of Electrical, Electronics and Communication Engineering, The NorthCap University, Gurgaon, IndiaDepartement de Genie Electrique, Ecole de Technologie Superieure Telecommunications and Microelectronics Integration Laboratory, University of Quebec, Montréal, QC, CanadaUnderwater wireless information transfer is of great interest to the military, industry, and the scientific community, as it plays an important role in tactical surveillance, pollution monitoring, oil control and maintenance, offshore explorations, climate change monitoring, and oceanography research. In order to facilitate all these activities, there is an increase in the number of unmanned vehicles or devices deployed underwater, which require high bandwidth and high capacity for information transfer underwater. Although tremendous progress has been made in the field of acoustic communication underwater, however, it is limited by bandwidth. All this has led to the proliferation of underwater optical wireless communication (UOWC), as it provides higher data rates than the traditional acoustic communication systems with significantly lower power consumption and simpler computational complexities for short-range wireless links. UOWC has many potential applications ranging from deep oceans to coastal waters. However, the biggest challenge for underwater wireless communication originates from the fundamental characteristics of ocean or sea water; addressing these challenges requires a thorough understanding of complex physio-chemical biological systems. In this paper, the main focus is to understand the feasibility and the reliability of high data rate underwater optical links due to various propagation phenomena that impact the performance of the system. This paper provides an exhaustive overview of recent advances in UOWC. Channel characterization, modulation schemes, coding techniques, and various sources of noise which are specific to UOWC are discussed. This paper not only provides exhaustive research in underwater optical communication but also aims to provide the development of new ideas that would help in the growth of future underwater communication. A hybrid approach to an acousto-optic communication system is presented that complements the existing acoustic system, resulting in high data rates, low latency, and an energy-efficient system.https://ieeexplore.ieee.org/document/7450595/Underwater optical wirelessoptical beam propagationvisible lightradio frequencyacoustic communicationhybrid optical-acoustic system |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Hemani Kaushal Georges Kaddoum |
spellingShingle |
Hemani Kaushal Georges Kaddoum Underwater Optical Wireless Communication IEEE Access Underwater optical wireless optical beam propagation visible light radio frequency acoustic communication hybrid optical-acoustic system |
author_facet |
Hemani Kaushal Georges Kaddoum |
author_sort |
Hemani Kaushal |
title |
Underwater Optical Wireless Communication |
title_short |
Underwater Optical Wireless Communication |
title_full |
Underwater Optical Wireless Communication |
title_fullStr |
Underwater Optical Wireless Communication |
title_full_unstemmed |
Underwater Optical Wireless Communication |
title_sort |
underwater optical wireless communication |
publisher |
IEEE |
series |
IEEE Access |
issn |
2169-3536 |
publishDate |
2016-01-01 |
description |
Underwater wireless information transfer is of great interest to the military, industry, and the scientific community, as it plays an important role in tactical surveillance, pollution monitoring, oil control and maintenance, offshore explorations, climate change monitoring, and oceanography research. In order to facilitate all these activities, there is an increase in the number of unmanned vehicles or devices deployed underwater, which require high bandwidth and high capacity for information transfer underwater. Although tremendous progress has been made in the field of acoustic communication underwater, however, it is limited by bandwidth. All this has led to the proliferation of underwater optical wireless communication (UOWC), as it provides higher data rates than the traditional acoustic communication systems with significantly lower power consumption and simpler computational complexities for short-range wireless links. UOWC has many potential applications ranging from deep oceans to coastal waters. However, the biggest challenge for underwater wireless communication originates from the fundamental characteristics of ocean or sea water; addressing these challenges requires a thorough understanding of complex physio-chemical biological systems. In this paper, the main focus is to understand the feasibility and the reliability of high data rate underwater optical links due to various propagation phenomena that impact the performance of the system. This paper provides an exhaustive overview of recent advances in UOWC. Channel characterization, modulation schemes, coding techniques, and various sources of noise which are specific to UOWC are discussed. This paper not only provides exhaustive research in underwater optical communication but also aims to provide the development of new ideas that would help in the growth of future underwater communication. A hybrid approach to an acousto-optic communication system is presented that complements the existing acoustic system, resulting in high data rates, low latency, and an energy-efficient system. |
topic |
Underwater optical wireless optical beam propagation visible light radio frequency acoustic communication hybrid optical-acoustic system |
url |
https://ieeexplore.ieee.org/document/7450595/ |
work_keys_str_mv |
AT hemanikaushal underwateropticalwirelesscommunication AT georgeskaddoum underwateropticalwirelesscommunication |
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1724195898489044992 |