High-Precision Modal Decomposition of Laser Beams Based on Globally Optimized SPGD Algorithm

We propose a globally optimized stochastic parallel gradient descent (SPGD) algorithm to analyze the modal content of laser beams with high precision. Modal decomposition (MD) based on conventional SPGD algorithms often falls to a local minimum when a laser beam consists of six or more fiber eigenmo...

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Main Authors: Kyuhong Choi, Changsu Jun
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Photonics Journal
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8811476/
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spelling doaj-1c4855c32a9e405b8359a5f60fdb45902021-03-29T17:58:24ZengIEEEIEEE Photonics Journal1943-06552019-01-0111511010.1109/JPHOT.2019.29371258811476High-Precision Modal Decomposition of Laser Beams Based on Globally Optimized SPGD AlgorithmKyuhong Choi0https://orcid.org/0000-0003-1976-1152Changsu Jun1https://orcid.org/0000-0003-0585-0517Advanced Photonics Research Institute, Gwangju Institute of Science and Technology, Gwangju, South KoreaAdvanced Photonics Research Institute, Gwangju Institute of Science and Technology, Gwangju, South KoreaWe propose a globally optimized stochastic parallel gradient descent (SPGD) algorithm to analyze the modal content of laser beams with high precision. Modal decomposition (MD) based on conventional SPGD algorithms often falls to a local minimum when a laser beam consists of six or more fiber eigenmodes, which results in a false combination of modes. While keeping the simplicity and speed advantages of the SPGD algorithm, we adopted several optimization techniques to discern the global minimum from local minima and achieve better accuracy. The enhanced SPGD algorithm includes the annealing of the learning rates, identifying and escaping of local minima with large perturbations, and comparing of the transient error function with a reference value. We were able to exactly analyze the modal content of beams from six-mode optical fibers with high precision in seconds. Calculation of the modal weight and phase percentage errors, as well as simulations of far-field evolution images, confirmed the importance of finding the global minimum in improving the accuracy and real-time analysis of MD. The simple structure of the enhanced algorithm and its global optimization ability in multimode fibers will accelerate numerical MD in diverse laser applications.https://ieeexplore.ieee.org/document/8811476/Modal decompositionSPGD algorithmfiber laserglobal minimum
collection DOAJ
language English
format Article
sources DOAJ
author Kyuhong Choi
Changsu Jun
spellingShingle Kyuhong Choi
Changsu Jun
High-Precision Modal Decomposition of Laser Beams Based on Globally Optimized SPGD Algorithm
IEEE Photonics Journal
Modal decomposition
SPGD algorithm
fiber laser
global minimum
author_facet Kyuhong Choi
Changsu Jun
author_sort Kyuhong Choi
title High-Precision Modal Decomposition of Laser Beams Based on Globally Optimized SPGD Algorithm
title_short High-Precision Modal Decomposition of Laser Beams Based on Globally Optimized SPGD Algorithm
title_full High-Precision Modal Decomposition of Laser Beams Based on Globally Optimized SPGD Algorithm
title_fullStr High-Precision Modal Decomposition of Laser Beams Based on Globally Optimized SPGD Algorithm
title_full_unstemmed High-Precision Modal Decomposition of Laser Beams Based on Globally Optimized SPGD Algorithm
title_sort high-precision modal decomposition of laser beams based on globally optimized spgd algorithm
publisher IEEE
series IEEE Photonics Journal
issn 1943-0655
publishDate 2019-01-01
description We propose a globally optimized stochastic parallel gradient descent (SPGD) algorithm to analyze the modal content of laser beams with high precision. Modal decomposition (MD) based on conventional SPGD algorithms often falls to a local minimum when a laser beam consists of six or more fiber eigenmodes, which results in a false combination of modes. While keeping the simplicity and speed advantages of the SPGD algorithm, we adopted several optimization techniques to discern the global minimum from local minima and achieve better accuracy. The enhanced SPGD algorithm includes the annealing of the learning rates, identifying and escaping of local minima with large perturbations, and comparing of the transient error function with a reference value. We were able to exactly analyze the modal content of beams from six-mode optical fibers with high precision in seconds. Calculation of the modal weight and phase percentage errors, as well as simulations of far-field evolution images, confirmed the importance of finding the global minimum in improving the accuracy and real-time analysis of MD. The simple structure of the enhanced algorithm and its global optimization ability in multimode fibers will accelerate numerical MD in diverse laser applications.
topic Modal decomposition
SPGD algorithm
fiber laser
global minimum
url https://ieeexplore.ieee.org/document/8811476/
work_keys_str_mv AT kyuhongchoi highprecisionmodaldecompositionoflaserbeamsbasedongloballyoptimizedspgdalgorithm
AT changsujun highprecisionmodaldecompositionoflaserbeamsbasedongloballyoptimizedspgdalgorithm
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