Feedforward Neural Network Enabled Optical Multi-Path Interference Mitigation for High-speed IMDD Transmission Systems

2023 Asia Communications and Photonics Conference/2023 International Photonics and Optoelectronics Meetings (ACP/POEM)(2023)

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摘要
The performance of high-speed intensity modulation direct detection (IM-DD) transmission can be severely degraded by the Optical multipath interference (MPI) arising from multiple reflections mainly from polluted fiber connectors. In this paper, we propose a data-driven MPI mitigation scheme utilizing a feedforward neural network (FNN), and its performance is experimentally evaluated in a 28Gbaud PAM4 IMDD system with a transmission distance of 10.81km. Compared to other newly reported MPI mitigation schemes, our proposed approach achieves a 3dB improvement in signal-to-interference (SIR) tolerance at the KP4 BER threshold.
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关键词
Feedforward Neural Network,Optical Multipath Interference,Signal-to-Interference,Intensity Modulation Direct Detection
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