TY - JOUR
T1 - Modeling and Mitigation of Power Degradation Induced by Hard Decision Errors in Power Profile Estimation
AU - Jiang, Yingjie
AU - Tang, Du
AU - Zhou, Hao
AU - Yang, Fan
AU - Zhang, Fan
AU - Xu, Hengying
AU - Bai, Chenglin
AU - Yang, Aiying
AU - Qiao, Yaojun
N1 - Publisher Copyright:
© 1983-2012 IEEE.
PY - 2026
Y1 - 2026
N2 - The use of pre-forward error correction (pre-FEC) hard-decision (HD) data is preferred for the practical implementation of the emerging optical performance monitoring technique, power profile estimation (PPE). However, pre-FEC HD data introduces power degradation that increases with the pre-FEC bit error rate (BER). To analyze this effect and mitigate the resulting degradation, we first derive analytical models for HD-induced power degradation in both correlation method (CM)-based and least-squares (LS)-based PPE. With the aid of the Gaussian noise (GN) model and numerical simulations, we show that HD data has a negligible impact on the spatial resolution function (SRF) but introduces significant errors in the accumulated nonlinear vectors. Based on the derived analytical models, we further propose a power degradation mitigation scheme by adjusting the weights of the accumulated nonlinear noise intensity distribution. The effectiveness of the proposed scheme is validated through both 130-GBaud simulations and DP-16QAM 64-GBaud experiments. The results demonstrate that the proposed method achieves estimation accuracy comparable to the ideal post-FEC case for both CM-based and LS-based PPE, with the root mean square error (RMSE) reduced to below 0.5 dB for LS-based PPE, whereas using HD data alone leads to severe degradation. These results support the use of HD data in practical PPE implementations and facilitate its deployment in real-time optical network monitoring.
AB - The use of pre-forward error correction (pre-FEC) hard-decision (HD) data is preferred for the practical implementation of the emerging optical performance monitoring technique, power profile estimation (PPE). However, pre-FEC HD data introduces power degradation that increases with the pre-FEC bit error rate (BER). To analyze this effect and mitigate the resulting degradation, we first derive analytical models for HD-induced power degradation in both correlation method (CM)-based and least-squares (LS)-based PPE. With the aid of the Gaussian noise (GN) model and numerical simulations, we show that HD data has a negligible impact on the spatial resolution function (SRF) but introduces significant errors in the accumulated nonlinear vectors. Based on the derived analytical models, we further propose a power degradation mitigation scheme by adjusting the weights of the accumulated nonlinear noise intensity distribution. The effectiveness of the proposed scheme is validated through both 130-GBaud simulations and DP-16QAM 64-GBaud experiments. The results demonstrate that the proposed method achieves estimation accuracy comparable to the ideal post-FEC case for both CM-based and LS-based PPE, with the root mean square error (RMSE) reduced to below 0.5 dB for LS-based PPE, whereas using HD data alone leads to severe degradation. These results support the use of HD data in practical PPE implementations and facilitate its deployment in real-time optical network monitoring.
KW - Coherent optical communication
KW - Fiber nonlinearity
KW - Optical Performance monitoring
KW - Power profile estimation
UR - https://www.scopus.com/pages/publications/105041951966
U2 - 10.1109/JLT.2026.3701271
DO - 10.1109/JLT.2026.3701271
M3 - Article
AN - SCOPUS:105041951966
SN - 0733-8724
JO - Journal of Lightwave Technology
JF - Journal of Lightwave Technology
ER -