• Acta Photonica Sinica
  • Vol. 50, Issue 9, 0906008 (2021)
Jiahao LI1, Lei SHI1, Tianxiu LI1, Yang XUE1, and Yani LI2
Author Affiliations
  • 1College of Information and Navigation, Air Force Engineering University, Xi'an70077, China
  • 2North Photoelectric Technology Defense Co., Ltd., Xi'an710043, China
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    DOI: 10.3788/gzxb20215009.0906008 Cite this Article
    Jiahao LI, Lei SHI, Tianxiu LI, Yang XUE, Yani LI. Four Wave Mixing Noise Analysis of Classical-quantum Signals Co-channel Transmission System[J]. Acta Photonica Sinica, 2021, 50(9): 0906008 Copy Citation Text show less
    Schematic of classical - quantum signals co-channel transmission system
    Fig. 1. Schematic of classical - quantum signals co-channel transmission system
    The process of four wave mixing
    Fig. 2. The process of four wave mixing
    Relation between BER and QBER with classical optical power
    Fig. 3. Relation between BER and QBER with classical optical power
    Spectrum after two types of fiber transmission
    Fig. 4. Spectrum after two types of fiber transmission
    3D graph of minimum BER after two types of fiber transmission
    Fig. 5. 3D graph of minimum BER after two types of fiber transmission
    Spectrum after two schemes transmission
    Fig. 6. Spectrum after two schemes transmission
    3D graph of minimum BER after two kinds of channel spacing distribution schemes transmission
    Fig. 7. 3D graph of minimum BER after two kinds of channel spacing distribution schemes transmission
    Spectrum after three schemes transmission
    Fig. 8. Spectrum after three schemes transmission
    3D graph of minimum BER after three code schemes transmission
    Fig. 9. 3D graph of minimum BER after three code schemes transmission
    ChannelC30C36
    FiberQMin BERNP/dBmQBER
    G.6524.43.40×10-6-61.133.88%
    G.6554.43.52×10-6-70.99.91%
    Table 1. Experimental data after two types of optical fiber transmission
    ChannelC30C42
    SchemeQMinBERNP/dBmQBER
    Scheme 14.43.40×10-6-61.133.88%
    Scheme 24.52.85×10-6-76.24.37%
    Table 2. Experimental data after two schemes transmission
    ChannelC30C36
    Code PatternQMinBERNP/dBmQBER
    NRZ4.43.40×10-6-61.133.88%
    RZ506.388.13×10-11-82.92.15%
    CSRZ5.763.72×10-9-98.31.69%
    Table 3. Experimental data after three schemes transmission
    Jiahao LI, Lei SHI, Tianxiu LI, Yang XUE, Yani LI. Four Wave Mixing Noise Analysis of Classical-quantum Signals Co-channel Transmission System[J]. Acta Photonica Sinica, 2021, 50(9): 0906008
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