Generating a radioheliograph image from SDO/AIA data with the machine learning method

Author:

Zhang Pei-Jin,Wang Chuan-Bing,Pu Guan-Shan

Abstract

Abstract Radioheliograph images are essential for the study of solar short term activities and long term variations, while the continuity and granularity of radioheliograph data are not so ideal, due to the short visible time of the Sun and the complex electron-magnetic environment near the ground-based radio telescope. In this work, we develop a multi-channel input single-channel output neural network, which can generate radioheliograph image in microwave band from the Extreme Ultra-violet (EUV) observation of the Atmospheric Imaging Assembly (AIA) on board the Solar Dynamic Observatory (SDO). The neural network is trained with nearly 8 years of data of Nobeyama Radioheliograph (NoRH) at 17 GHz and SDO/AIA from January 2011 to September 2018. The generated radioheliograph image is in good consistency with the well-calibrated NoRH observation. SDO/AIA provides solar atmosphere images in multiple EUV wavelengths every 12 seconds from space, so the present model can fill the vacancy of limited observation time of microwave radioheliograph, and support further study of the relationship between the microwave and EUV emission.

Publisher

IOP Publishing

Subject

Space and Planetary Science,Astronomy and Astrophysics

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. A Novel Methodology for Hunting Exoplanets in Space Using Machine Learning;EAI Endorsed Transactions on Internet of Things;2024-03-07

2. Image Desaturation for SDO/AIA Using Mixed Convolution Network;Research in Astronomy and Astrophysics;2022-05-20

3. Mapping Solar X-Ray Images from SDO/AIA EUV Images by Deep Learning;The Astrophysical Journal;2021-07-01

4. Selection of Three (Extreme)Ultraviolet Channels for Solar Satellite Missions by Deep Learning;The Astrophysical Journal Letters;2021-07-01

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