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  • Conference on Lasers and Electro-Optics/Europe (CLEO/Europe 2023) and European Quantum Electronics Conference (EQEC 2023)
  • Technical Digest Series (Optica Publishing Group, 2023),
  • paper ej_3_5

Long-range Prediction of Nonlinear Dynamics in Fibre Optics Using Transformer-based Neural Network

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Abstract

Ultrafast nonlinear dynamics in fibre optics can be simulated using the nonlinear Schrödinger equation (NLSE). However, the process may be slow if we need to do many simulations, such as during the optimization of optical device. It has been shown that recurrent neural network (RNN), a branch of deep learning model, has promising result in predicting the nonlinear dynamics of a laser pulse [1,2]. We propose the use of transformer-based [3] deep learning model, to achieve superior accuracy and speed by leveraging its long-term temporal dependency and parallel computation brought by the attention mechanism.

© 2023 IEEE

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