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Autori principali: Sha, Feiyang, Liu, Yu, Xia, Lidong, Chen, Yao, Zhou, Qing, Chen, Yangrui, Zhong, Chuyu, Zhang, Xuefei, Song, Tengfei, Sun, Mingzhe, Li, Haitang, Oloketuyi, Jacob, Liu, Qiang, Wang, Xinjian, Luo, Qiwang, Li, Xiaobo
Natura: Preprint
Pubblicazione: 2025
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Accesso online:https://arxiv.org/abs/2507.17670
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author Sha, Feiyang
Liu, Yu
Xia, Lidong
Chen, Yao
Zhou, Qing
Chen, Yangrui
Zhong, Chuyu
Zhang, Xuefei
Song, Tengfei
Sun, Mingzhe
Li, Haitang
Oloketuyi, Jacob
Liu, Qiang
Wang, Xinjian
Luo, Qiwang
Li, Xiaobo
author_facet Sha, Feiyang
Liu, Yu
Xia, Lidong
Chen, Yao
Zhou, Qing
Chen, Yangrui
Zhong, Chuyu
Zhang, Xuefei
Song, Tengfei
Sun, Mingzhe
Li, Haitang
Oloketuyi, Jacob
Liu, Qiang
Wang, Xinjian
Luo, Qiwang
Li, Xiaobo
contents A few ground-based solar coronagraphs have been installed in western China for observing the low-layer corona in recent years. However, determining the Helioprojective Coordinates for the coronagraphic data with high precision is an important but challenging step for further research with other multi-wavelength data. In this paper, we propose an automatic coronal image registration method that combines local statistical correlation and feature point matching to achieve accurate registration between ground-based coronal green-line images and space-based 211 Å images. Then, the accurate field of view information of the coronal green-line images can be derived, allowing the images to be mapped to the Helioprojective Cartesian Coordinates with an accuracy of no less than 0.1''. This method has been extensively validated using 100 days of coronal data spanning an 11-year period, demonstrating its broad applicability to ground-based coronagraphs equipped with green-line observations. It significantly enhances the scientific value of ground-based coronal data, enabling comprehensive studies of coronal transient activities and facilitating the joint analysis of data from multiple instruments. Additionally, it holds potential for future applications in improving the pointing accuracy of coronagraphs.
format Preprint
id arxiv_https___arxiv_org_abs_2507_17670
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Mapping ground-based coronagraphic images to Helioprojective-Cartesian coordinate system by image registration
Sha, Feiyang
Liu, Yu
Xia, Lidong
Chen, Yao
Zhou, Qing
Chen, Yangrui
Zhong, Chuyu
Zhang, Xuefei
Song, Tengfei
Sun, Mingzhe
Li, Haitang
Oloketuyi, Jacob
Liu, Qiang
Wang, Xinjian
Luo, Qiwang
Li, Xiaobo
Solar and Stellar Astrophysics
Astrophysics of Galaxies
Instrumentation and Methods for Astrophysics
A few ground-based solar coronagraphs have been installed in western China for observing the low-layer corona in recent years. However, determining the Helioprojective Coordinates for the coronagraphic data with high precision is an important but challenging step for further research with other multi-wavelength data. In this paper, we propose an automatic coronal image registration method that combines local statistical correlation and feature point matching to achieve accurate registration between ground-based coronal green-line images and space-based 211 Å images. Then, the accurate field of view information of the coronal green-line images can be derived, allowing the images to be mapped to the Helioprojective Cartesian Coordinates with an accuracy of no less than 0.1''. This method has been extensively validated using 100 days of coronal data spanning an 11-year period, demonstrating its broad applicability to ground-based coronagraphs equipped with green-line observations. It significantly enhances the scientific value of ground-based coronal data, enabling comprehensive studies of coronal transient activities and facilitating the joint analysis of data from multiple instruments. Additionally, it holds potential for future applications in improving the pointing accuracy of coronagraphs.
title Mapping ground-based coronagraphic images to Helioprojective-Cartesian coordinate system by image registration
topic Solar and Stellar Astrophysics
Astrophysics of Galaxies
Instrumentation and Methods for Astrophysics
url https://arxiv.org/abs/2507.17670