Study on the QC-LDPC code in optical communication system based on the FOPA

被引:0
|
作者
机构
[1] [1,Zheng, Jian
[2] Bie, Hong-Xia
[3] Zhang, Xue-Kun
[4] Lei, Chun-Yang
[5] Fang, Ming
[6] Li, Sha
[7] Kang, Zhe
来源
Zheng, J. (dotopala@hotmail.com) | 1600年 / Board of Optronics Lasers, No. 47 Yang-Liu-Qing Ying-Jian Road, Tian-Jin City, 300380, China卷 / 25期
关键词
Fibers - Satellite communication systems - Amplification - Convolutional codes - Forward error correction - Optical fiber communication - Optical parametric amplifiers;
D O I
暂无
中图分类号
学科分类号
摘要
Optical signal would be distorted during transmission in fiber caused by dispersion, and the non-ideal optical amplification would also lead to error bits.In order to restrain the effects, in this paper, quasi-cyclic low density parity check (QC-LDPC) codes are studied in a 40 Gbit/s non-return-to-zero differential phase shift lceying (NRZ-DPSK) signal transmission system based on fiber-based optical parametric amplification (FOPA) so that the performance of the optical communication system could be improved.The results indicate that under 10 km fiber length, the bit error rate (BER) can achieve 10-11 because of the QC-LDPC codes with the same code length but different code rates, and then the different fiber lengths are tested for the same QC-LDPC codes, the BER can achieve 10-11 also. QC-LDPC codes constructed by the maximization of the shortest cycle algorithm can correct the bits errors caused by dispersion, nonlinearity, and pump jitter, and consequently the communication quality can be improved.
引用
收藏
相关论文
共 50 条
  • [41] QC-LDPC Decoding Architecture based on Stride Scheduling
    Kim, Bongjin
    Park, In-Cheol
    2011 IEEE INTERNATIONAL SYMPOSIUM ON CIRCUITS AND SYSTEMS (ISCAS), 2011, : 1319 - 1322
  • [42] Detecting Cycles of Length 10 in the Tanner Graph of a QC-LDPC Code Based on Protograph Analysis
    Kharin, A. V.
    Zavertkin, K. N.
    Ovinnikov, A. A.
    PROBLEMS OF INFORMATION TRANSMISSION, 2020, 56 (04) : 317 - 331
  • [43] Iterative Receiver for Qc-LDPC Coded Underwater Acoustic Communication Systems
    Zhao, Liang
    2014 37TH INTERNATIONAL CONVENTION ON INFORMATION AND COMMUNICATION TECHNOLOGY, ELECTRONICS AND MICROELECTRONICS (MIPRO), 2014, : 491 - 494
  • [44] Codec Implementation of QC-LDPC Code in CCSDS Near-Earth Standard
    Wang, Juhua
    Yuan, Suchun
    Zhou, Yuan
    Zhang, Guohua
    2020 5TH INTERNATIONAL CONFERENCE ON COMPUTER AND COMMUNICATION SYSTEMS (ICCCS 2020), 2020, : 575 - 579
  • [45] A Failure Rate Model of Bit-flipping Decoders for QC-LDPC and QC-MDPC Code-based Cryptosystems
    Baldi, Marco
    Barenghi, Alessandro
    Chiaraluce, Franco
    Pelosi, Gerardo
    Santini, Paolo
    PROCEEDINGS OF THE 17TH INTERNATIONAL JOINT CONFERENCE ON E-BUSINESS AND TELECOMMUNICATIONS (SECRYPT), VOL 1, 2020, : 238 - 249
  • [46] FPGA Implementation of High Performance QC-LDPC Decoder for Optical Communications
    Zou, Ding
    Djordjevic, Ivan B.
    OPTICAL METRO NETWORKS AND SHORT-HAUL SYSTEMS VII, 2015, 9388
  • [47] Design of Bilayer QC-LDPC Codes for Decode-and Forward based Cooperative Relaying Communication
    Kong, Lingjun
    Kim, Kyeong Jin
    Kwak, Kyung Sup
    2012 IEEE INTERNATIONAL CONFERENCE ON COMMUNICATIONS (ICC), 2012,
  • [48] Optimization of the parity-check matrix density in QC-LDPC code-based McEliece cryptosystems
    Baldi, Marco
    Bianchi, Marco
    Chiaraluce, Franco
    2013 IEEE INTERNATIONAL CONFERENCE ON COMMUNICATIONS WORKSHOPS (IEEE ICC), 2013, : 707 - 711
  • [49] A new coding scheme of QC-LDPC codes for optical transmission systems
    Yuan Jianguo
    Liu Feilong
    Ye Wenwei
    Huang Sheng
    Wang Yong
    OPTIK, 2014, 125 (03): : 1016 - 1019
  • [50] A New Analysis of the McEliece Cryptosystem Based on QC-LDPC Codes
    Baldi, Marco
    Bodrato, Marco
    Chiaraluce, Franco
    SECURITY AND CRYPTOGRAPHY FOR NETWORKS, PROCEEDINGS, 2008, 5229 : 246 - +