TY - JOUR
T1 - Performance Analysis of Dual-Hop RF-UWOC Systems
AU - Lei, Hongjiang
AU - Zhang, Yiyao
AU - Park, Ki Hong
AU - Ansari, Imran Shafique
AU - Pan, Gaofeng
AU - Alouini, Mohamed Slim
N1 - Publisher Copyright:
© 2009-2012 IEEE.
PY - 2020/4
Y1 - 2020/4
N2 - In this paper, we analyze the performance of a dual-hop radio frequency-underwater wireless optical communication (RF-UWOC) transmission systems wherein the RF and UWOC links experience Nakagami-m fading and the mixture Exponential-Generalized Gamma fading, respectively. The location of S is uniformly distributed in the space of the hemisphere where the relay is located in the center of the hemisphere. The effect of bubbles level, temperature gradient, water types, and detection techniques are considered. We derive closed-form expressions for outage probability (OP) and average bit error rate (ABER) for both fixed and variable gain relaying schemes with different detection techniques. Furthermore, by utilizing the expansion of Meijer's G-function and Fox's H-function, the closed-form expressions for the asymptotic OP and ABER are derived when the average signal-to-noise ratio of both links tends to infinity. The analytical results are verified by Monte Carlo simulation results. Our results demonstrate that the diversity order of the dual-hop RF-UWOC systems depends on the RF fading parameter and detection technology of the UWOC link.
AB - In this paper, we analyze the performance of a dual-hop radio frequency-underwater wireless optical communication (RF-UWOC) transmission systems wherein the RF and UWOC links experience Nakagami-m fading and the mixture Exponential-Generalized Gamma fading, respectively. The location of S is uniformly distributed in the space of the hemisphere where the relay is located in the center of the hemisphere. The effect of bubbles level, temperature gradient, water types, and detection techniques are considered. We derive closed-form expressions for outage probability (OP) and average bit error rate (ABER) for both fixed and variable gain relaying schemes with different detection techniques. Furthermore, by utilizing the expansion of Meijer's G-function and Fox's H-function, the closed-form expressions for the asymptotic OP and ABER are derived when the average signal-to-noise ratio of both links tends to infinity. The analytical results are verified by Monte Carlo simulation results. Our results demonstrate that the diversity order of the dual-hop RF-UWOC systems depends on the RF fading parameter and detection technology of the UWOC link.
KW - Dual-hop radio frequency-underwater wireless optical communication systems
KW - Nakagami-m fading
KW - average bit error rate
KW - mixture Exponential-Generalized Gamma fading
KW - outage probability
UR - http://www.scopus.com/inward/record.url?scp=85083760399&partnerID=8YFLogxK
U2 - 10.1109/jphot.2020.2983016
DO - 10.1109/jphot.2020.2983016
M3 - Article
AN - SCOPUS:85083760399
SN - 1943-0655
VL - 12
JO - IEEE Photonics Journal
JF - IEEE Photonics Journal
IS - 2
M1 - 9050496
ER -