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Morphological-Based Filtering of Noise: Practical Study on Solar Images

机译:基于形态学的噪声滤波:太阳能图像的实践研究

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In this paper, a morphological-based algorithm is proposed for noise filtering in digital images. This algorithm is based on the morphological hit-miss transform (HMT). It is applied on a real-life problem, which is the detection of solar features in H-alpha solar images that are obtained from Meudon Observatory. These images are processed by the automated detection system of Filaments reported by R. Qahwaji and T. Colak [1]. The automated detection system works well when detecting filaments in noise-free solar images; it achieves false acceptance rate (FAR) error rate of 4% and false rejection rate (FRR) error rate of 36% when compared with the manually detected filaments in the synoptic maps. When the detection is applied after the addition of Gaussian noise to the solar images it achieves FAR of 3% and FRR of 51%. Then by filtering using the proposed algorithm, the detection performance is enhanced to achieve FAR of 8% and FRR of 13%.
机译:本文提出了一种基于形态学的算法,用于数字图像中的噪声滤波。该算法基于形态击中错误转换(HMT)。它应用于现实生活问题,这是从Meudon天文台获得的H-alpha太阳能图像中的太阳能特征的检测。这些图像由R. Qahwaji和T.Colak报道的丝丝自动检测系统处理。当检测无噪声太阳能图像中的长丝时,自动检测系统运行良好;与在概要图中的手动检测到的细丝相比,它达到假验收率(FRR)错误率(FRR)错误率为36%。在向太阳能图像添加高斯噪声后应用检测时,它达到3%和FRR的达到51%。然后通过使用所提出的算法进行滤波,检测性能得到增强,以实现8%和FRR为13%。

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