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Automated High-Precision Recognition of Solar Filaments Based on an Improved U2-Net
Jiang WD(姜文冬); Li ZY(李正阳)
2024-09-29
Source PublicationUniverse
Volume10Issue:10Pages:381-394
Abstract

Solar filaments are a significant solar activity phenomenon,typically observed in full-disk solar observations in the H-alpha band.They are closely associated with the magnetic fields of solar active regions,solar flare eruptions,and coronal mass ejections.

With the increasing volume of observational data,the automated high-precision recognition of solar filaments using deep learning is crucial.In this study,we processed full-disk H-alpha solar images captured by the Chinese H alpha Solar Explorer in 2023 to generate labels for solar filaments.

The preprocessing steps included limb-darkening removal,grayscale transformation,K-means clustering,particle erosion,multiple closing operations,and hole filling.

The dataset containing solar filament labels is constructed for deep learning.We developed the Attention U2-Net neural network for deep learning on the solar dataset by introducing an attention mechanism into U2-Net.

In the results,Attention U 2-Net achieved an average Accuracy of 0.9987,an average Precision of 0.8221,an average Recall of 0.8469,an average IoU of 0.7139,and an average F1-score of 0.8323 on the solar filament test set,showing significant improvements compared to other U-net variants.

Keywordsolar filament recognition deep learning U-net attention mechanism
Document Type期刊论文
Identifierhttp://ir.niaot.ac.cn/handle/114a32/2261
Collection中国科学院南京天文光学技术研究所知识成果
期刊论文
Affiliation南京天文光学技术研究所
Recommended Citation
GB/T 7714
Jiang WD,Li ZY. Automated High-Precision Recognition of Solar Filaments Based on an Improved U2-Net[J]. Universe,2024,10(10):381-394.
APA Jiang WD,&Li ZY.(2024).Automated High-Precision Recognition of Solar Filaments Based on an Improved U2-Net.Universe,10(10),381-394.
MLA Jiang WD,et al."Automated High-Precision Recognition of Solar Filaments Based on an Improved U2-Net".Universe 10.10(2024):381-394.
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