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Automated Detection Methods for Solar Activities and an Application for Statistic Analysis of Solar Filament

机译:太阳能活动的自动检测方法和太阳能丝的统计分析应用

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With the rapid development of telescopes, both temporal cadence and the spatial resolution of observations are increasing. This in turn generates vast amount of data, which can be efficiently searched only with automated detections in order to derive the features of interest in the observations. A number of automated detection methods and algorithms have been developed for solar activities, based on the image processing and machine learning techniques. In this paper, after briefly reviewing some automated detection methods, we describe our efficient and versatile automated detection method for solar filaments. It is able not only to recognize fifaments, determine the features such as the position, area, spine, and other relevant parameters, but also to trace the daily evolution of the fifaments. It is applied to process the full disk Hα data observed in nearly three solar cycles, and some statistic results are presented.
机译:随着望远镜的快速发展,暂时的节奏和观察的空间分辨率都在增加。这又会产生大量数据,只能通过自动检测有效地搜索,以便导出对观察感兴趣的特征。基于图像处理和机器学习技术,已经为太阳能活动开发了许多自动检测方法和算法。在本文中,在简要审查了一些自动化检测方法之后,我们描述了我们的太阳能有效和多功能自动化检测方法。它不仅能够识别四分之一,确定诸如位置,面积,脊柱等相关参数等特征,而且还追踪了海区的日常演变。它适用于处理在近三个太阳循环中观察到的全盘Hα数据,并提出了一些统计结果。

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