• Photonics Research
  • Vol. 3, Issue 3, 48 (2015)
Weihao Liu1、2, Zhengyuan Xu1、3、*, and Liuqing Yang4
Author Affiliations
  • 1School of Information Science and Technology, University of Science and Technology of China, Hefei, China
  • 2State Key Laboratory of Robotics, Shenyang Institute of Automation, Chinese Academy of Sciences, Shenyang, China
  • 3Key Laboratory of Wireless-Optical Communications, Chinese Academy of Sciences, Hefei, China
  • 4Department of Electrical and Computer Engineering, Colorado State University, Fort Collins, Colorado 80521, USA
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    DOI: 10.1364/PRJ.3.000048 Cite this Article Set citation alerts
    Weihao Liu, Zhengyuan Xu, Liuqing Yang. SIMO detection schemes for underwater optical wireless communication under turbulence[J]. Photonics Research, 2015, 3(3): 48 Copy Citation Text show less

    Abstract

    In underwater optical wireless communication (UOWC), a channel is characterized by abundant scattering/absorption effects and optical turbulence. Most previous studies on UOWC have been limited to scattering/absorption effects. However, experiments in the literature indicate that underwater optical turbulence (UOT) can cause severe degradation of UOWC performance. In this paper, we characterize an UOWC channel with both scattering/absorption and UOT taken into consideration, and a spatial diversity receiver scheme, say a single-input–multiple-output (SIMO) scheme, based on a light-emitting-diode (LED) source and multiple detectors is proposed to mitigate deep fading. The Monte Carlo based statistical simulation method is introduced to evaluate the bit-error-rate performance of the system. It is shown that spatial diversity can effectively reduce channel fading and remarkably extend communication range.
    Ir=It·Pl·I,(1)

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    ΦnK(κ)=K3κ11/3,(2)

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    f(I)=1Iσ2πexp((ln(I/I0)μ)22σ2),(3)

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    σ2=I2I2I2.(4)

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    σ2=exp[0.49σr2(1+1.11σr12/5)7/6+0.51σr2(1+0.69σr12/5)5/6]1,(5)

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    σr2=37.3K3(2πλ)7/6L11/6,(6)

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    ρ0=(44.2K3(2πλ)2L)3/5.(7)

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    r=η(Ir+Ib)+n,(8)

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    pe=0f(Ir)Q(ηIr2N0)dIr,(9)

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    pe=0f(Ir)Q(η2MN0i=1MIi2)dIr,(10)

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    pe=0f(Ir)Q(ηM2N0i=1MIi)dIr.(11)

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    pe=0f(Ir)Q(ηIr2MN0)dIr,(12)

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    Ir=max(I1,I2,,IM).(13)

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    SNRij=2η2Irij2N0,(14)

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    SNR¯=1Mnsj=1Mi=1nsSNRij.(15)

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    BERi=Q(ηIrci2N0).(16)

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    BER¯=1nsi=1nsBERi,(17)

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    Weihao Liu, Zhengyuan Xu, Liuqing Yang. SIMO detection schemes for underwater optical wireless communication under turbulence[J]. Photonics Research, 2015, 3(3): 48
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