• Infrared and Laser Engineering
  • Vol. 47, Issue 12, 1222002 (2018)
Zhao Taifei1、2、*, Wang Xiufeng1, Wang Hua1, Yu Xuxu1, and Li Yongming1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
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    DOI: 10.3788/irla201847.1222002 Cite this Article
    Zhao Taifei, Wang Xiufeng, Wang Hua, Yu Xuxu, Li Yongming. Research on ultraviolet non-line-of-sight diversity reception technology in weak turbulence[J]. Infrared and Laser Engineering, 2018, 47(12): 1222002 Copy Citation Text show less
    References

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    [2] Chen G, Xu Z, Sadler B M. Experimental demonstration of ultraviolet pulse broadening in short-range non-line-of-sight communication channels[J]. Optics Express, 2010, 18(10): 10500-10509.

    [3] Han D, Liu Y, Zhang K, et al. Theoretical and experimental research on diversity reception technology in NLOS UV communication system[J]. Optics Express, 2012, 20(14): 15833-15842.

    [4] Xiao H, Zuo Y, Wu J, et al. Bit-error-rate performance of non-line-of-sight UV transmission with spatial diversity reception.[J]. Optics Letters, 2012, 37(19): 4143-4145.

    [5] Zhang H, Yin H, Jia H, et al. Study of effects of obstacle on non-line-of-sight ultraviolet communication links[J]. Optics Express, 2011, 19(22): 21216-21226.

    [6] Zhang H, Li H, Xiao D, et al. Performance analysis of spatial-diversity reception over combined effects of atmospheric turbulence[J]. Chinese Journal of Lasers, 2016, 43(4): 0405002. (in Chinese)

    [7] Fan C, Zuo Y, Wu Z, et al. Research on diversity reception in ultraviolet communication system[J]. Optical Communication Technology, 2013, 37(12): 44-46.

    [8] Elshimy M A, Hranilovic S. Spatial-diversity imaging receivers for Non-line-of-sight solar-blind UV communications[J]. Journal of Lightwave Technology, 2015, 33(11): 2246-2255.

    [9] Ke X, Liu M. Diversity reception technology over turbulence channels in wireless optical communication [J]. Acta Optica Sinica, 2015, 35(1): 80-87.

    [10] Chen D, Ke X. Research on diversity receive technology on wireless optical communication using subcarrier modulation. [J]. Journal on Communications, 2012, 33(8): 128-133.

    [11] Liu Y, Zhang G. Combination of spatial diversity receiving technology of wireless optical communication in weak turbulence atmosphere channel[J]. Laser Technology, 2014, 38(5): 698-702.

    [12] Shao J, Ke X, Chen Q. A suitable polar coding modulation scheme for atmospheric weak turbulence channel [J]. Acta Electronica Sinica, 2016, 44(8): 1831-1836.

    [13] Wang H, Hu H, Zhang Y, et al. Modeling and simulating of error performance for free space optical communication system through weak turbulence atmosphere[J]. Journal of System Simulation, 2011, 23(4): 788-792.

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    [15] Fan C. Research on diversity technology in ultraviolet communication system[D]. Beijing: Beijing University of Posts and Telecommunications, 2014. (in Chinese)

    [16] Zhao T, Wang X, Liu Y. Modulation research of helicopter landing using ultraviolet guiding technology in atmospheric turbulence[J]. Laser Technology, 2017, 41(3): 411-415. (in Chinese)

    [17] Ding H, Chen G, Majumdar A K, et al. Turbulence modeling for non-line-of-sight ultraviolet scattering channels[C]//Proceedings of SPIE-the International Society for Optical Engineering, 2011, 8038(1): 73-81.

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    Zhao Taifei, Wang Xiufeng, Wang Hua, Yu Xuxu, Li Yongming. Research on ultraviolet non-line-of-sight diversity reception technology in weak turbulence[J]. Infrared and Laser Engineering, 2018, 47(12): 1222002
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