DocumentCode
14630
Title
Monte-Carlo-based channel characterization for underwater optical communication systems
Author
Gabriel, Conrad ; Khalighi, Mohammad Ali ; Bourennane, Salah ; Leon, Pierre ; Rigaud, Vincent
Author_Institution
Ecole Centrale Marseille, Aix-Marseille Univ., Marseille, France
Volume
5
Issue
1
fYear
2013
fDate
Jan. 2013
Firstpage
1
Lastpage
12
Abstract
We consider channel characterization for underwater wireless optical communication (UWOC) systems. We focus on the channel impulse response and, in particular, quantify the channel time dispersion for different water types, link distances, and transmitter/receiver characteristics, taking into account realistic parameters. We use the Monte Carlo approach to simulate the trajectories of emitted photons propagating in water from the transmitter towards the receiver. During their propagation, photons are absorbed or scattered as a result of their interaction with different particles present in water. To model angle scattering, we use the two-term Henyey-Greenstein model in our channel simulator. We show that this model is more accurate than the commonly used Henyey-Greenstein model, especially in pure sea waters. Through the numerical results that we present, we show that, except for highly turbid waters, the channel time dispersion can be neglected when working over moderate distances. In other words, under such conditions, we do not suffer from any inter-symbol interference in the received signal. Lastly, we study the performance of a typical UWOC system in terms of bit-error-rate using the simple on-off-keying modulation. The presented results give insight into the design of UWOC systems.
Keywords
Monte Carlo methods; amplitude shift keying; error statistics; optical communication; telecommunication channels; Monte Carlo approach; Monte-Carlo-based channel characterization; UWOC systems; bit-error-rate; channel impulse response; channel simulator; channel time dispersion; inter-symbol interference; on-off-keying modulation; transmitter-receiver characteristics; turbid waters; two-term Henyey-Greenstein model; underwater optical communication systems; Absorption; Monte Carlo methods; Optical fiber communication; Optical transmitters; Photonics; Receivers; Scattering; Beam scattering; Channel delay spread; Henyey–Greenstein model; Monte Carlo simulation; Underwater wireless sensornetwork; Underwateroptical communication;
fLanguage
English
Journal_Title
Optical Communications and Networking, IEEE/OSA Journal of
Publisher
ieee
ISSN
1943-0620
Type
jour
DOI
10.1364/JOCN.5.000001
Filename
6413540
Link To Document