Underwater visible light communications in cascaded gamma-gamma turbulence

Title Underwater visible light communications in cascaded gamma-gamma turbulence
Author Elamassie, Mohammed, Sait, S. M., Uysal, Murat
Publication Date: 2018
Publication Place - IEEE
Subject Underwater visible light communication, Underwater turbulence, Error rate performance, Moderate and strong turbulence
Type Document
Language English
Digital Yes
Manuscript No
Library: Özyeğin University
Library Asset ID 978-153864920-6
Record ID 79a37a34-e69d-45c7-b12b-1ce52f25b754
Library Location Electrical & Electronics Engineering
Date 2018
Notes TÜBİTAK
Sample Text In this paper, we investigate the performance of vertical underwater visible light communication (VLC) links in the presence of moderate and strong turbulence conditions using Gamma-Gamma (GG) probability density function. In vertical links, refractive index changes with depth eventually affecting the variance of turbulence-induced fading. Considering such variations with respect to depth, we first develop a statistical turbulence channel model based on the cascaded structure of fading coefficients. Then, we use this expression to formulate a closed form expression for bit error rate performance. We confirm the analytical derivations through simulations.
DOI 10.1109/GLOCOMW.2018.8644170
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Underwater visible light communications in cascaded gamma-gamma turbulence

Author Elamassie, Mohammed, Sait, S. M., Uysal, Murat
Publication Date 2018
Publication Place - IEEE
Subject Underwater visible light communication, Underwater turbulence, Error rate performance, Moderate and strong turbulence
Type Document
Language English
Digital Yes
Manuscript No
Library Özyeğin University
Library Asset ID 978-153864920-6
Record ID 79a37a34-e69d-45c7-b12b-1ce52f25b754
Library Location Electrical & Electronics Engineering
Date 2018
Notes TÜBİTAK
Sample Text In this paper, we investigate the performance of vertical underwater visible light communication (VLC) links in the presence of moderate and strong turbulence conditions using Gamma-Gamma (GG) probability density function. In vertical links, refractive index changes with depth eventually affecting the variance of turbulence-induced fading. Considering such variations with respect to depth, we first develop a statistical turbulence channel model based on the cascaded structure of fading coefficients. Then, we use this expression to formulate a closed form expression for bit error rate performance. We confirm the analytical derivations through simulations.
DOI 10.1109/GLOCOMW.2018.8644170
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