TY - JOUR
T1 - A Noise-Tolerant Carrier Phase Recovery Method for Inter-Satellite Coherent Optical Communications
AU - Hu, Chunyuan
AU - Lin, Yujie
AU - Wu, Zihao
AU - Yang, Ruolin
AU - Bu, Xiangyuan
N1 - Publisher Copyright:
© 2025 by the authors.
PY - 2025/1
Y1 - 2025/1
N2 - Coherent free-space optical communication offers significant advantages in terms of communication capacity, making it particularly suitable for high-speed inter-satellite transmission within satellite communication networks. Nonetheless, the presence of Doppler frequency offset (FO) and phase noise (PN) associated with lasers adversely affects the bit error rate (BER) performance of these communication systems. Conventional methods for FO and phase estimation are usually hindered by high computational demands and phase cycle slips, especially in environments characterized by elevated channel noise. To address these challenges, a noise-tolerant method is proposed to facilitate accurate carrier phase recovery (CPR) with reduced complexity. This method merges a second-order feedback loop and a feedforward stage to achieve accurate estimation. The simulation results indicate that the proposed method surpasses traditional methods in terms of noise tolerance and resource efficiency. Particularly, the BER of the proposed method can be decreased to (Formula presented.) at a signal-to-noise ratio (SNR) of 4.5 dB, in contrast to a BER of 0.25 for the traditional method. Additionally, the resource consumption of the proposed method can be decreased by 64% under equivalent conditions. Furthermore, the experimental results reveal that the phase estimation error and BER for the proposed method are (Formula presented.) and (Formula presented.), respectively, when the received power is −41 dBm. These values are significantly lower than those achieved with traditional methods, which obtain errors of (Formula presented.) and a BER of 0.48, respectively.
AB - Coherent free-space optical communication offers significant advantages in terms of communication capacity, making it particularly suitable for high-speed inter-satellite transmission within satellite communication networks. Nonetheless, the presence of Doppler frequency offset (FO) and phase noise (PN) associated with lasers adversely affects the bit error rate (BER) performance of these communication systems. Conventional methods for FO and phase estimation are usually hindered by high computational demands and phase cycle slips, especially in environments characterized by elevated channel noise. To address these challenges, a noise-tolerant method is proposed to facilitate accurate carrier phase recovery (CPR) with reduced complexity. This method merges a second-order feedback loop and a feedforward stage to achieve accurate estimation. The simulation results indicate that the proposed method surpasses traditional methods in terms of noise tolerance and resource efficiency. Particularly, the BER of the proposed method can be decreased to (Formula presented.) at a signal-to-noise ratio (SNR) of 4.5 dB, in contrast to a BER of 0.25 for the traditional method. Additionally, the resource consumption of the proposed method can be decreased by 64% under equivalent conditions. Furthermore, the experimental results reveal that the phase estimation error and BER for the proposed method are (Formula presented.) and (Formula presented.), respectively, when the received power is −41 dBm. These values are significantly lower than those achieved with traditional methods, which obtain errors of (Formula presented.) and a BER of 0.48, respectively.
KW - carrier phase recovery
KW - coherent optical communication
KW - Doppler frequency offset
KW - phase noise
UR - http://www.scopus.com/inward/record.url?scp=85216017469&partnerID=8YFLogxK
U2 - 10.3390/electronics14020265
DO - 10.3390/electronics14020265
M3 - Article
AN - SCOPUS:85216017469
SN - 2079-9292
VL - 14
JO - Electronics (Switzerland)
JF - Electronics (Switzerland)
IS - 2
M1 - 265
ER -