• Infrared and Laser Engineering
  • Vol. 50, Issue 12, 20210131 (2021)
Fengtao He, Jiaqi Li, Jianlei Zhang*, Yi Yang, Qingjie Wang, and Ni Wang
Author Affiliations
  • College of Electronic Engineering, Xi'an University of Posts and Telecommunications, Xi'an 710121, China
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    DOI: 10.3788/IRLA20210131 Cite this Article
    Fengtao He, Jiaqi Li, Jianlei Zhang, Yi Yang, Qingjie Wang, Ni Wang. Performance analysis of wavelength diversity wireless optical communication system in ocean turbulence[J]. Infrared and Laser Engineering, 2021, 50(12): 20210131 Copy Citation Text show less
    References

    [1] H Kaushal, G Kaddoum. Underwater optical wireless communication. IEEE Access, 4, 1518-1547(2016).

    [2] Z Zeng, F Shu, H Zhang, et al. A survey of underwater optical wireless communications. IEEE Communications Surveys & Tutorials, 19, 204-238(2017).

    [3] L Liu, S Zhou, J H Cui. Prospects and problems of wireless communication for underwater sensor networks. Wireless Communications & Mobile Computing, 8, 977-994(2010).

    [4] Meihong Sui, Xinsheng Yu, Xifeng Liu, et al. Research on the characteristics of underwater optical wireless communication channels in seawater. Marine Science, 33, 80-85(2009).

    [5] A Abbas, M Ali. On the performance of blue–green waves propagation through underwater optical wireless communication system. Photonic Network Communications, 36, 309-315(2018).

    [6] Y N Ata, Y Baykal. Scintillations of optical plane and spherical waves in underwater turbulence. A Optics Image Science & Vision, 31, 1552-1556(2014).

    [7] Baykal, Yahya. Scintillation index in strong oceanic turbulence. Optics Communications, 375, 15-18(2016).

    [8] M C Gökce, Baykal b Yahya. Aperture averaging in strong oceanic turbulence. Optics Communications, 413, 196-199(2018).

    [9] Y Fu, C Huang, Y Du. Effect of aperture averaging on mean bit error rate for UWOC system over moderate to strong oceanic turbulence. Optics Communications, 451, 6-12(2019).

    [10] R Kaushik, V Khandelwal, R C Jain. Effect of aperture averaging and spatial diversity on capacity of optical wireless communication systems over lognormal channels. Radioelectronics and Communications Systems, 59, 527-535(2016).

    [11] A Huang, L Tao, C Wang, et al. Error performance of underwater wireless optical communications with spatial diversity under turbulence channels. Applied Optics, 57, 7600-7608(2018).

    [12] P N Ramavath, A Kumar, S S Godkhindi, et al. Experimental studies on the performance of underwater optical communication link with channel coding and interleaving. Csi Transactions on Ict, 6, 65-70(2018).

    [13] F Mattoussi, M A Khalighi, S Bourennane. Improving the performance of underwater wireless optical communication links by channel coding. Applied Optics, 57, 2115-2120(2018).

    [14] P N Ramavath, Udupi S Acharya, P Krishnan. High-speed and reliable underwater wireless optical communication system using multiple-input multiple-output and channel coding techniques for IoUT applications. Optics Communications, 461, 125229(2020).

    [15] V Srivastava, A Mandloi, G G Soni. Outage probability and average BER estimation of FSO system employing wavelength diversity. Optical and Quantum Electronics, 51, 229(2019).

    [16] W Jiao, H Liu, J Yin, et al. Performance of a QAM/FSO communication system employing spatial diversity in weak and saturation turbulence channels. Journal of Modern Optics, 66, 965-975(2019).

    [17] K Prabu, S Cheepalli, D S Kumar. Analysis of PolSK based FSO system using wavelength and time diversity over strong atmospheric turbulence with pointing errors. Optics Communications, 324, 318-323(2014).

    [18] D Shah, D Kothari, A Ghosh. Bit error rate analysis of the K channel using wavelength diversity. Optical Engineering, 56, 056106(2017).

    [19] K Sharma, S K Grewal. Performance assessment of hybrid PPM–BPSK–SIM based FSO communication system using time and wavelength diversity under variant atmospheric turbulence. Optical and Quantum Electronics, 52, 430(2020).

    [20] K P Peppas, A C Boucouvalas, Z Ghassemloy. Performance of underwater optical wireless communication with multi-pulse pulse-position modulation receivers and spatial diversity. IET Optoelectronics, 11, 180-185(2017).

    [21] B Pearson, B Fox-Kemper. Log-normal turbulence dissipation in global ocean models. Physical Review Letters, 120, 094501(2018).

    [22] Hongyan Jiang, Hongbing Qiu, Ning He, et al. Optical OFDM spatial diversity system in lognormal fading UVLC channels. Infrared and Laser Engineering, 49, 0203008(2020).

    [23] Yuqing Fu, Qi Duan, Lin Zhou. Performance of underwater wireless optical communication system in Gamma Gamma strong oceanic turbulence with pointing error. Infrared and Laser Engineering, 49, 0203013(2020).

    [24] Fengtao He, Ying Du, Jianlei Zhang, et al. Bit error rate of pulse position modulation wireless optical communication in gamma-gamma oceanic anisotropic turbulence. Acta Physica Sinica, 68, 164206(2019).

    [25] A A Farid, S Hranilovic. Outage capacity optimization for free-space optical links with pointing errors. Journal of Lightwave Technology, 25, 1702-1710(2007).

    [26] Z Zou, P Wang, W Chen, et al. Average capacity of a UWOC system with partially coherent Gaussian beams propagating in weak oceanic turbulence. Journal of the Optical Society of America A, 36, 1463-1474(2019).

    [27] Y Fu, Y Du. Performance of heterodyne differential phase-shift-keying underwater wireless optical communication systems in gamma-gamma-distributed turbulence. Applied Optics, 57, 2057-2063(2018).

    [28] Adamchik V, Marichev O. The algithm f calculating integrals of hypergeometric type functions its realization in REDUCE system[C]ISSAC ''90 Proceedings of International Symposium on Symbolic Algebraic Computation, 1990: 212224.

    [29] L C Andrews, R L Phillips, C Y Hopen. Aperture averaging of optical scintillations: power fluctuations and the temporal spectrum. Waves in Random Media, 10, 53-70(2000).

    [30] V V Nikishov, V I Nikishov. Spectrum of turbulent fluctuations of the sea-water refraction index. International Journal of Fluid Mechanics Research, 27, 82-98(2000).

    [31] Y Wang, L Zhu, W Feng. Performance study of wavelength diversity serial relay OFDM FSO system over exponentiated weibull channels. Optics Communications, 478, 126470(2021).

    [32] Kumar Sahu Sanjay, Shanmugam Palanisamy. A theoretical study on the impact of particle scattering on the channel characteristics of underwater optical communication system. Optics Communications, 408, 3-14(2018).

    [33] Fei Wang, Yi Yang, Zuoliang Duan, et al. Characteristic analysis of underwater laser transmission channel based on visible light. Optical Communication Technology, 40, 26-28(2016).

    [34] Chen Li, Fei Wang. Analysis of the influence of seawater quality on laser receiving power. Application of Optoelectronic Technology, 32, 44-49(2017).

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    Fengtao He, Jiaqi Li, Jianlei Zhang, Yi Yang, Qingjie Wang, Ni Wang. Performance analysis of wavelength diversity wireless optical communication system in ocean turbulence[J]. Infrared and Laser Engineering, 2021, 50(12): 20210131
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