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SOA pattern effect mitigation by neural network based pre-equalizer for 50G PON

delete2021-07-20
delete24
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OA
AI
L
Lei Xue
义理林 (Lilin Yi) *
R
Rui Lin
L
Luyao Huang
J
Jiajia Chen
DOI:10.1364/OE.426781delete
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Abstract

Abstract

En 中文
Semiconductor optical amplifier (SOA) is widely used for power amplification in O-band, particularly for passive optical networks (PONs) which can greatly benefit its advantages of simple structure, low power consumption and integrability with photonics circuits. However, the annoying nonlinear pattern effect degrades system performance when the SOA is needed as a pre-amplifier in PONs. Conventional solutions for pattern effect mitigation are either based on optical filtering or gain clamping. They are not simple or sufficiently flexible for practical deployment. Neural network (NN) has been demonstrated for impairment compensation in optical communications thanks to its powerful nonlinear fitting ability. In this paper, for the first time, NN-based equalizer is proposed to mitigate the SOA pattern effect for 50G PON with intensity modulation and direct detection. The experimental results confirm that the NN-based equalizer can effectively mitigate the SOA nonlinear pattern effect and significantly improve the dynamic range of receiver, achieving 29-dB power budget with the FEC limit at 1e(-2). Moreover, the well-trained NN model in the receiver side can be directly placed at the transmitter in the optical line terminal to pre-equalize the signal for transmission so as to simplify digital signal processing in the optical network unit. (C) 2021 Optical Society of America under the terms of the OSA Open Access Publishing Agreement
Keywords:
TRANSMISSION

Journal

Optics Express cover
Optics Express
IF:
3.3
Papers:
6.1W
Citations:
14.3W

Organization

C
chalmers university of technology
Scholars:
1.5W
Papers: 1.6W
Citations: 10
S
shanghai jiao tong university
Scholars:
15.6W
Papers: 11.6W
Citations: 159