TY - JOUR
T1 - Bit-Error Ratio Performance Improvement Using Iterative Decoding for Polybinary-Shaped Super-Nyquist Wavelength Division Multiplexed Signals
AU - Yuan, Shuai
AU - Igarashi, Koji
AU - Tsuritani, Takehiro
AU - Morita, Itsuro
N1 - Funding Information:
Manuscript received June 24, 2017; revised September 2, 2017; accepted September 11, 2017. Date of publication September 17, 2017; date of current version October 12, 2017. This work was supported in part by Grant-in-Aid for Scientific Research (B) (16H04366), the Ministry of Education, Science, Sports and Culture, Japan. (Corresponding author: Koji Igarashi.) S. Yuan is with the Osaka University, Osaka 565-0871, Japan (e-mail: ensui@opt.comm.eng.osaka-u.ac.jp).
Publisher Copyright:
© 1983-2012 IEEE.
PY - 2017/11/1
Y1 - 2017/11/1
N2 - In super-Nyquist wavelength division multiplexed (WDM) systems with frequency spacing smaller than the signal baudrate, the maximum-likelihood (ML) decoder in the receiver is usually introduced to compensate for intersymbol interference due to tight spectral filtering, such as polybinary shaping. After the ML decoder, symbol errors tend to propagate, causing excess continuous errors. Considering that forward error correction (FEC) is commonly introduced, the excess continuous errors degrade bit-error ratio (BER) performance after FEC, so-called post-FEC BER. In order to suppress the performance degradation, we introduce iterative decoding between the first ML decoder for polybinary shaping and the second FEC decoder in the receiver. First, we calculate BER characteristics of polybinary-shaped super-Nyquist WDM quadrature phase-shift keying (QPSK) signals. The results show that iterative decoding is effective for improving post-FEC BER performance. A lager pre-FEC BER threshold for post-FEC BER < 10-5 is obtained in super-Nyquist WDM case than in the Nyquist WDM case, although a higher signal-to-noise ratio (SNR) is required. Next, we measure the BER characteristics of three-channel duobinary-shaped super-Nyquist WDM 12.5-Gbaud dual-polarization QPSK signals. The iterative decoding reduces the optical SNR penalty by 0.8 dB. A larger pre-FEC BER threshold of 3.1 × 10-2 is obtained in the duobinary-shaped super-Nyquist WDM case, compared with the threshold of 2.2 × 10-2 in the Nyquist WDM case.
AB - In super-Nyquist wavelength division multiplexed (WDM) systems with frequency spacing smaller than the signal baudrate, the maximum-likelihood (ML) decoder in the receiver is usually introduced to compensate for intersymbol interference due to tight spectral filtering, such as polybinary shaping. After the ML decoder, symbol errors tend to propagate, causing excess continuous errors. Considering that forward error correction (FEC) is commonly introduced, the excess continuous errors degrade bit-error ratio (BER) performance after FEC, so-called post-FEC BER. In order to suppress the performance degradation, we introduce iterative decoding between the first ML decoder for polybinary shaping and the second FEC decoder in the receiver. First, we calculate BER characteristics of polybinary-shaped super-Nyquist WDM quadrature phase-shift keying (QPSK) signals. The results show that iterative decoding is effective for improving post-FEC BER performance. A lager pre-FEC BER threshold for post-FEC BER < 10-5 is obtained in super-Nyquist WDM case than in the Nyquist WDM case, although a higher signal-to-noise ratio (SNR) is required. Next, we measure the BER characteristics of three-channel duobinary-shaped super-Nyquist WDM 12.5-Gbaud dual-polarization QPSK signals. The iterative decoding reduces the optical SNR penalty by 0.8 dB. A larger pre-FEC BER threshold of 3.1 × 10-2 is obtained in the duobinary-shaped super-Nyquist WDM case, compared with the threshold of 2.2 × 10-2 in the Nyquist WDM case.
KW - Digital signal processing
KW - pulse shaping
KW - wavelength division multiplexing
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U2 - 10.1109/JLT.2017.2753819
DO - 10.1109/JLT.2017.2753819
M3 - Article
AN - SCOPUS:85030763835
SN - 0733-8724
VL - 35
SP - 4605
EP - 4612
JO - Journal of Lightwave Technology
JF - Journal of Lightwave Technology
IS - 21
M1 - 8039481
ER -