Photonics Research, Volume. 7, Issue 12, 1461(2019)

4 × 4 MIMO fiber-wireless transmission based on an integrated four-channel directly modulated optical transceiver

Di Zhang1, Yao Ye1, Lei Deng2、*, Di Li2, Haiping Song2, Yucheng Zhang2, Minming Zhang2, Shu Wang1, and Deming Liu2
Author Affiliations
  • 1School of Electronic Information and Communications, Huazhong University of Science and Technology, Wuhan 430074, China
  • 2Wuhan National Laboratory for Optoelectronics and School of Optical and Electronic Information, Huazhong University of Science and Technology, Wuhan 430074, China
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    Figures & Tables(8)
    Structure of (a) TOSA and (b) ROSA. (c) The photographs of the fabricated TOSA module. (d) Transmission of optical signals in the 42° oblique angle De-mux AWG-PLC.
    (a) Simulated results of the optical CE performance versus distance and oblique angle. (b) CE performance versus different distance when the oblique angle of the De-mux AWG-PLC is set at 40°, 42°, and 44°.
    Photographs of the fabricated optical transceiver module, PD array, TIA array, AWG-PLC, and DFB-LD.
    Scattering parameter performance versus the frequency for each lane of the fabricated optical transceiver module: (a) S11 and (b) S21. (c) Measured SFDR3 performance versus different frequency for each lane of the fabricated optical transceiver. (d) SFDR performance of lane 3 when the central frequency is 6 GHz, the fundamental item is the output two-tone RF signal, and IMD3 is the third-order intermodulation distortion.
    Schematic diagram of the modified single-loop LLL algorithm. H: matrix of the MIMO channel. Q, R are the matrix after QR decomposition of H, Q is a unitary matrix, and R is an uptriangular matrix. Im is an identity matrix. μ is the correction factor for R, H, and T. G is an orthogonal rotation matrix.
    Experimental setup of the proposed 4×4 MIMO 16QAM-OFDM RoF system for both (a) downlink and (b) uplink.
    Measured BER performance for 4×4 MIMO 16QAM-OFDM signals over 15.5 km SSMF and 1.2 m air transmission versus received optical power, (a) with ZF, (b) with MLSE, and (c) with LR-ZF in downlink, and (d) with ZF, (e) with MLSE, and (f) with LR-ZF in uplink.
    • Table 1. Real Multiplication for the Original LLL Algorithm, the Proposed LR Algorithm, and the Optimal MLSE in an N×N MIMO System

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      Table 1. Real Multiplication for the Original LLL Algorithm, the Proposed LR Algorithm, and the Optimal MLSE in an N×N MIMO System

      4×4 MIMO 16QAMStepsReal Multiplication
      LLL in Ref. [23]4 LLL loops4[(14N326N)/3+4N2]=1312
      Proposed LRH,T4N3=256
      1 LLL loop(14N326N)/3+4N2=328
      MLSE106
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    Di Zhang, Yao Ye, Lei Deng, Di Li, Haiping Song, Yucheng Zhang, Minming Zhang, Shu Wang, Deming Liu. 4 × 4 MIMO fiber-wireless transmission based on an integrated four-channel directly modulated optical transceiver[J]. Photonics Research, 2019, 7(12): 1461

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    Paper Information

    Category: Fiber Optics and Optical Communications

    Received: Jul. 4, 2019

    Accepted: Oct. 14, 2019

    Published Online: Nov. 20, 2019

    The Author Email: Lei Deng (denglei_hust@mail.hust.edu.cn)

    DOI:10.1364/PRJ.7.001461

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