• Laser & Optoelectronics Progress
  • Vol. 58, Issue 19, 1901004 (2021)
Fengtao He1、*, Ni Wang1、**, Jianlei Zhang1、***, Yi Yang1, Qingjie Wang1, and Bili Li2
Author Affiliations
  • 1School of Electronic Engineering, Xi'an University of Posts and Telecommunications, Xi'an , Shaanxi 710121, China
  • 2Key Laboratory of Underwater Information and Control, China Shipbuilding Industry Corporation 705 Research Institute, Xi'an , Shaanxi 710077, China
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    DOI: 10.3788/LOP202158.1901004 Cite this Article Set citation alerts
    Fengtao He, Ni Wang, Jianlei Zhang, Yi Yang, Qingjie Wang, Bili Li. Performance of Heterodyne DPSK Wireless Optical Communication System Under Anisotropic Ocean Turbulence[J]. Laser & Optoelectronics Progress, 2021, 58(19): 1901004 Copy Citation Text show less

    Abstract

    In this study, using the extended Huygens-Fresnel principle and the improved Rytov method, a turbulence channel model based on the Gamma-Gamma intensity probability distribution is used to obtain the analytical expression of outage probability. On this basis, the outage probability characteristics of the heterodyne differential phase-shift keying (DPSK) modulation of Gaussian beam waves are studied in anisotropic turbulence. A performance study under different anisotropic ocean turbulence conditions is conducted. The effects of various turbulence parameters, i.e., the contributions of temperature and salinity to the power spectrum, the dissipation rate of kinetic energy per unit mass fluid, and the dissipation rate of mean-squared temperature, are investigated, and the transmission distance and data transmission rate on outage probability are analyzed. The analysis provides a theoretical basis for reducing the outage probability of Gaussian beam DPSK modulation and improving communication quality and reliability.
    u(s)=Aexp-s22αs2
    I(p,z=L)=1(λL)2----ds12ds22u(s1)u*(s2)×expjk2L[(p-s1)2-(p-s2)2]-0.5DΨ(s1,s2)
    I(p,z=L)=kαs2L214αs2+1ρ02+k2αs24L2×exp-kαsL2(px2+py2)1+2αsρ02+kαs2L2
    Pr=--<I(p,z=L)>h(p)dp
    Cn2=7.845πk-7/6L-11/6×Re0Ldz0dκx-dκy[P(z,κx,κy)P(z,-κx,-κy)+P(z,κx,κy)2Φn(κx,κy)]
    P(z,κx,κy)=jkexp[-0.5kL-1jz(L-z)(κx2+κy2)]
    Φn(κx,κy)=0.388×10-8μxμyε-1/3[(μxκx)2+(μyκy)2]-11/6×1+2.35[(μxκx)2+(μyκy)2]-11/6υ1/2ε-1/6×ω-2XTω2exp[-ATδ(κx,κy,ε)]+exp[-ASδ(κx,κy,ε)]-2ωexp[-ATSδ(κx,κy,ε)]
    δκx,κy,ε=8.284υε-1/3[(μxκx)2+(μyκy)2]2/3+12.978υ3/2ε-1/2[(μxκx)2+(μyκy)2]
    f(ξ)=2(αβ)(α+β)/2Γ(α)Γ(β)ξ¯ξξ¯(α+β)/2-1Κα-β2αβξξ¯,   ξ0
    ξ¯=ηATbhf'I¯=ηλPrTbhc
    σlnx2(D)=0.49ΩG-Λ1ΩG+Λ12σB21+0.4(2-Θ¯1)(σB/σR)12/7(ΩG+Λ1)13-12Θ¯1+15Θ¯126/7+0.56(1+Θ¯1)σB12/57/6
    σlny2(D)=0.51σB2/(1+0.69σB12/5)5/61+1.20(σR/σB)12/5+0.83σR12/5/(ΩG+Λ1)
    σB23.86σR20.40[(1+2Θ1)2+4Λ12]5/12×cos56arctan1+2Θ12Λ1-1116Λ15/6
    Pout=Pr(ξ<ξth)=0ξthfξdξ
    Pout=0ξthf(ξ)dξ=0ξth2(αβ)(α+β)/2Γ(α)Γ(β)ξ¯ξξ¯(α+β)/2-1Κα-β2αβξξ¯dξ
    Kmx=12G0,22,0m/2-m/2x24
    Pout=αβα+β/2ΓαΓβζthξ¯α+β/2×G1,32,11-α-β/2α-β/2,β-α/2,-α-β/2αβξ¯ξth
    Fengtao He, Ni Wang, Jianlei Zhang, Yi Yang, Qingjie Wang, Bili Li. Performance of Heterodyne DPSK Wireless Optical Communication System Under Anisotropic Ocean Turbulence[J]. Laser & Optoelectronics Progress, 2021, 58(19): 1901004
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