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Coronal loop detection from solar images

机译:从太阳影像检测冠状loop

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摘要

In this paper, we make an overview of a methodology for the automatic retrieval of images with coronal loops from the solar image data captured by the extreme-ultraviolet imaging telescope (EIT) onboard the spacecraft SOHO (Solar and Heliospheric Observatory). Our image retrieval system provides relevant data to astrophysicists who need such data to study the coronal heating problem. As part of building this system, we investigated various image preprocessing techniques, image based features, and classifiers to automatically detect coronal loops and to indicate their locations on the images. Despite many challenges related to the coronal loop characteristic, we obtained promising results, namely, 78% precision and 80% recall in loop retrieval.
机译:在本文中,我们概述了一种从SOHO(太阳和日球天文台)机上的极紫外成像望远镜(EIT)捕获的太阳图像数据中自动提取带有冠状环图像的方法的概述。我们的图像检索系统为需要研究天体加热问题的天体物理学家提供了相关数据。作为构建此系统的一部分,我们研究了各种图像预处理技术,基于图像的功能和分类器,以自动检测冠状环并指示其在图像上的位置。尽管有许多与冠状loop特征相关的挑战,但我们仍获得了令人鼓舞的结果,即retrieval取回的准确性为78%,召回率为80%。

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