中国激光, 2014, 41 (6): 0605007, 网络出版: 2014-04-16   

基于水印位的信道估计对100 Gb/s PDM-DQPSK光通信系统中低密度奇偶校验码纠错性能的提升

Performance Enhancement of LDPC in 100 Gb/s PDM-DQPSK Optical Communication Using a Water-Bit Based on Channel Estimation
作者单位
1 北京邮电大学信息光子学与光通信国家重点实验室, 北京 100876
2 北京邮电大学理学院, 北京 100876
摘要
针对高速光通信系统中高斯白噪声和偏振模色散(PMD)引起的干扰问题,研究了一种改进的前向纠错方法,通过向低密度奇偶校验(LDPC)码中插入具有固定信息的比特位(“水印位”)来估计信道,并将其与译码算法结合构成新的算法。研究发现,若以误比特率(BER)低于10-9为标准,则在纠错性能方面,高斯信道中含16、32位水印位的LDPC码与卡方信道中传统的LDPC码相比,所需的光信噪比(OSNR)值可分别减少约0.25 dB、0.35 dB;当考虑高速光通信中的PMD时,在差分群时延(DGD)为20 ps和30 ps时,含16、32位水印位的LDPC码与传统LDPC码字相比,所需OSNR值可分别减少约0.63 dB、0.98 dB和1.16 dB、1.87 dB。
Abstract
To reduce the interference caused by channel noise and polarization mode dispersion (PMD) in the optical communication, a modified forward error correction method is studied. By inserting fixed bits which are defined as the watermark bits (water-bit ) into the low density parity check (LDPC) codes to estimate the channel, a new decoding algorithm which is combined with channel estimation is proposed. The results show that the LDPC code with 16、 32 water-bit transmitted over Gaussian channel outperforms the conventional LDPC code transmitted over Chi-square channel in the error correction performance, and with bit error rate (BER) below 10-9 as standard, the optical signal to noise ratio (OSNR) value can reduce about 0.25 dB、 0.35 dB. When PMD is considered in the high-speed optical communications, the LDPC code with 16、 32 water-bit has a better tolerance than the conventional LDPC code, when differential group delay (DGD) is 20 ps and 30 ps, the OSNR value can reduce about 0.63 dB、 0.98 dB and 1.16 dB、 1.87 dB.
参考文献

[1] 廖薇, 吴翔, 刘锦高. 基于低密度奇偶校验码的超强前向纠错码设计[J]. 光学学报, 2008, 28(s1): 58-61.

    Liao Wei, Wu Xiang, Liu Jingao. Design of a super-FEC code based on low density parity check code in optical communication system[J]. Acta Optica Sinica, 2008, 28(s2): 58-61.

[2] Ivan B Djordjevic, Lei Xu, Ting Wang. Optical LDPC decoders for beyond 100 Gbit/s optical transmission[J]. Opt Lett, 2009, 34(9): 1420-1422.

[3] Xi Lixia, Yang Lei, Chen Haoran, et al.. PMD mitigation by LDPC codes with polarization scramblers[J]. Chin Opt Lett, 2012, 10(s2): s20609.

[4] Han Dahai, Xi Lixia, Li Minliang, et al.. Impact of the distribution pattern of fast polarization scrambler on the performance of PMD mitigation with FEC for DQPSK optical system[J]. Chin Opt Lett, 2011, 9(7): 070604.

[5] Lyubomir L Minkov, Ivan B Djordjevic, Hussam G Batshon, et al.. Experimental evaluation of high-rate LDPC codes for PMD compensation by Turbo equalization[C]. Optical Fiber Communication and the National Fiber Optic Engineering (OFC/NFOEC), 2008, JThA59.

[6] 郝士琦, 冷蛟锋. 基于LDPC码和MIMO的无线光通信系统性能[J]. 中国激光, 2012, 39(s1): s105006.

    Hao Shiqi, Leng Jiaofeng. Performance analysis of optical wireless communication based on LDPC codes and MIMO[J]. Chinese J Lasers, 2012, 39(s1): s105006.

[7] Yongsheng Wu, Aiying Yang, Yunan Sun, et al.. Modified LDPC decoding rule for pulse position modulation[J]. Chin Opt Lett, 2012, 10(s1): s10605.

[8] 贾科军, 赵延刚, 陈辉, 等. 无线光通信系统误码性能分析及方法研究[J]. 激光与光电子学进展, 2012, 49(3): 030603.

    Jia Kejun, Zhao Yangang, Chen Hui, et al.. Analysis and methodology study of bit error performance of FSO system[J]. Laser & Optoelectronics Progress, 2012, 49(3): 030603.

[9] 王勇, 曹家年. 基于低密度奇偶校验码和非对称限幅光正交频分复用技术的大气激光通信系统性能[J]. 中国激光, 2010, 37(12): 3031-3036.

    Wang Yong, Cao Jianian. Performance analysis of atmospheric laser communication system basing on asymmetrically clipped optical orthogonal frequency division multiplexing intensity modulation and lower density parity check code[J]. Chinese J Lasers, 2010, 37(12): 3031-3036.

[10] 刘加林, 郝士琦, 周建国, 等. 基于LDPC码的分集接收系统性能研究[J]. 激光与光电子学进展, 2013, 50(10): 100604.

    Liu Jialin, Hao Shiqi, Zhou Jianguo, et al.. Performance study of the diversity reception system based on LDPC codes[J]. Laser & Optoelectronics Progress, 2013, 50(10): 100604.

[11] 袁建国, 王望, 梁天宇. 一种高速长距离光通信系统中QC-LDPC码的构造方法[J]. 光电子·激光, 2012, 23(5): 906-909.

    Yuan Jianguo, Wang Wang, Liang Tianyu. A novel construction method of QC-LDPC codes for high-speed long-haul optical communication systems[J]. Journal of Optoelectronics·Laser, 2012, 23(5): 906-909.

[12] 许渤, 丁宏. 一种LDPC码在光纤通信系统中的性能分析[J]. 光通信研究, 2007, 33(5): 1-3.

    Xu Bo, Ding Hong. Performance analysis of LDPC code in fiber optic communication systems[J]. Study on Optical Communications, 2007, 33(5): 1-3.

[13] Yuan Jianguo, Xie Ya, Wang Lin, et al.. A novel concatenated code based on the improved SCG-LDPC code for optical transmission systems[J]. Optoelectronics Letters, 2013, 9(1): 42-44.

[14] R Echard, S C Chang. The π-rotation low-density parity check codes[C]. San Antonio: Global Telecommunications Conference, 2001, 2: 980-984.

[15] 冷蛟锋, 郝士琦, 吕旭光, 等. 基于低密度奇偶校验码的MPPM比特符号映射及系统性能研究[J]. 光学学报, 2012, 32(4): 0406001.

    Leng Jiaofeng, Hao Shiqi, Lü Xuguang, et al.. Study on bit-symbol mapping method of MPPM and system performance based on low density parity check codes[J]. Acta Optica Sinica, 2012, 32(4): 0406001.

[16] 周建国, 郝士琦, 刘加林, 等. 大气激光通信中基于遗传算法的交织器设计[J]. 中国激光, 2013, 40(6): 0605004.

    Zhou Jianguo, Hao Shiqi, Liu Jialin, et al.. Interleaver design basing on genetic algorithm in atmospheric optical communication[J]. Chinese J Lasers, 2013, 40(6): 0605004.

[17] 袁东风, 张海刚. LDPC码理论与应用[M]. 北京: 人民邮电出版社, 2008. 230-238.

    Yuan Dongfeng, Zhang Haigang. LDPC Code Theory and Application[M]. Beijing: Post & Telecom Press, 2008. 230-238.

[18] 袁建国, 毛幼菊, 叶文伟. 光通信系统中信道模型与FEC码型构造的分析[J]. 半导体光电, 2008, 29(4): 571-575.

    Yuan Jianguo, Mao Youju, Ye Wenwei. Analysis on channel model and construction of FEC code type for optical communication systems[J]. Semiconductor Optoelectronics, 2008, 29(4): 571-575.

[19] R Echard, S C Chang. Good high-rate π-rotation LDPC codes based on novel puncturing techniques[C]. Taichung: International Symposium on Information Theory and its Applications (ISITA), 2010. 1-6.

[20] 贺鹤云. LDPC码基础与应用[M]. 北京: 人民邮电出版社, 2009. 149-151.

    He Heyun. Principle and Application of LDPC[M]. Beijing:Posts & Telecom Press, 2009. 149-151.

[21] Bi Wei, Zhang Wenbo, He Wenxue, et al.. A modified decoding algorithm involving priori characteristics bits for LDPC[C]. Advanced Infocommn Technology(ICAIT), 2013. 245-246.

[22] D Fafchamps, G Rodriguez-Guisantes, P Gallion. Chi-square statistical models as a good base for the optimisation of optical communication systems[C]. International Conference on Photonics in Switching, 2008. 4-7.

[23] X Liu, C Xie, A J van Wijngaarden. Multichannel PMD mitigation through forward-error-correction with distributed fast PMD scrambling[C]. Optical Fiber Communication Conference, 2004. 23-27.

李超, 张文博, 张晓光, 席丽霞, 唐先锋, 何文雪. 基于水印位的信道估计对100 Gb/s PDM-DQPSK光通信系统中低密度奇偶校验码纠错性能的提升[J]. 中国激光, 2014, 41(6): 0605007. Li Chao, Zhang Wenbo, Zhang Xiaoguang, Xi Lixia, Tang Xianfeng, He Wenxue. Performance Enhancement of LDPC in 100 Gb/s PDM-DQPSK Optical Communication Using a Water-Bit Based on Channel Estimation[J]. Chinese Journal of Lasers, 2014, 41(6): 0605007.

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