Digital Signal Processing for Optical Access Networks

被引:1
|
作者
Jianjun Yu [1 ]
机构
[1] Optics Labs,ZTE (TX) Inc.
关键词
digital signal processing; high spectrum efficiency; super-Nyquist; coherent optical transmission;
D O I
暂无
中图分类号
TN911.72 [数字信号处理];
学科分类号
摘要
In this paper,we investigate advanced digital signal process-ing(DSP)at the transmitter and receiver side for signal pre-equalization and post-equalization in order to improve spec-trum efficiency(SE)and transmission distance in an opticalaccess network.A novel DSP scheme for this optical super-Nyquist filtering 9 Quadrature Amplitude Modulation(9-QAM)like signals based on multi-modulus equalization with-out post filtering is proposed.This scheme recovers the Ny-quist filtered Quadrature Phase-Shift Keying(QPSK)signal toa 9-QAM-like one.With this technique,SE can be increasedto 4 b/s/Hz for QPSK signals.A novel digital super-Nyquistsignal generation scheme is also proposed to further suppressthe Nyquist signal bandwidth and reduce channel crosstalkwithout the need for optical pre-filtering.Only optical cou-plers are needed for super-Nyquist wavelength-division-multi-plexing(WDM)channel multiplexing.We extend the DSP forshort-haul optical transmission networks by using high-orderQAMs.We propose a high-speed Carrierless Amplitude/Phase-64 QAM(CAP-64 QAM)system using directly modulated la-ser(DML)based on direct detection and digital equalization.Decision-directed least mean square is used to equalize theCAP-64QAM.Using this scheme,we generate and transmitup to 60 Gbit/s CAP-64QAM over 20 km standard single-mode fiber based on the DML and direct detection.Finally,several key problems are solved for real time orthogonal-fre-quency-division-multiplexing(OFDM)signal transmission andprocessing.With coherent detection,up to 100 Gbit/s 16QAM-OFDM real-time transmission is possible.
引用
收藏
页码:40 / 48
页数:9
相关论文
共 50 条
  • [31] OPTICAL SIGNAL-PROCESSING FOR FUTURE COMMUNICATIONS NETWORKS
    SARUWATARI, M
    MATSUMOTO, T
    NTT REVIEW, 1992, 4 (06): : 83 - 91
  • [32] Energy bottlenecks in future networks and optical signal processing
    Namiki, S.
    Hasama, T.
    Ishikawa, H.
    PS: 2009 INTERNATIONAL CONFERENCE ON PHOTONICS IN SWITCHING, 2009, : 255 - 258
  • [33] OPTICAL SIGNAL-PROCESSING FOR LIGHTWAVE COMMUNICATIONS NETWORKS
    KAZOVSKY, LG
    IEEE JOURNAL ON SELECTED AREAS IN COMMUNICATIONS, 1990, 8 (06) : 973 - 982
  • [34] Direct Demodulation of Optical BPSK/QPSK Signal without Digital Signal Processing
    Ha, TrongThuy
    Seo, DongSun
    RADIOENGINEERING, 2018, 27 (04) : 942 - 947
  • [35] High-Speed Optical Time-Division Multiple-Access (OTDMA) Networks Using Optical Signal Processing
    Jian-Guo Zhang
    A. B. Sharma
    Photonic Network Communication, 1999, 1 : 273 - 285
  • [36] High-speed optical time-division multiple-access (OTDMA) networks using optical signal processing
    Zhang, JG
    Sharma, AB
    PHOTONIC NETWORK COMMUNICATIONS, 1999, 1 (04) : 273 - 285
  • [37] All-optical signal processing technologies in flexible optical networks
    Yuefeng Ji
    Hongxiang Wang
    Jiabin Cui
    Meitong Yu
    Zhitian Yang
    Lin Bai
    Photonic Network Communications, 2019, 38 : 14 - 36
  • [38] All-optical signal processing technologies in flexible optical networks
    Ji, Yuefeng
    Wang, Hongxiang
    Cui, Jiabin
    Yu, Meitong
    Yang, Zhitian
    Bai, Lin
    PHOTONIC NETWORK COMMUNICATIONS, 2019, 38 (01) : 14 - 36
  • [39] Targeted Optical Signal Processing for High-Performance Optical Networks
    Willner, Alan Eli
    2008 INTERNATIONAL CONFERENCE ON PHOTONICS IN SWITCHING, 2008, : 5 - 5
  • [40] A MULTIPLE-ACCESS PIPELINE ARCHITECTURE FOR DIGITAL SIGNAL-PROCESSING
    MCKINNEY, BC
    ELGUIBALY, F
    IEEE TRANSACTIONS ON COMPUTERS, 1988, 37 (03) : 283 - 290