An application of Bottom Hat transformation to extract blood vessel from retinal images

A. Halder, Pritam Bhattacharya
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引用次数: 11

Abstract

Extraction of blood vessels in retinal images provides early diagnosis of different retinopathy diseases (diabetic retinopathy, injury detection, abnormality detection, hemorrhage detection and macular degeneration). This paper presents about the problem of noises and also the blood vessels appearing darker and tiny in the retinal images. This paper introduces a new method for the extraction of retinal blood vessels in retinal fundus images which will be useful to eye specialists in their visual examination of retina and will definitely improve automatic retinal images analysis. In this paper, at first, light reflectance removal technique is used to remove the brighter strips of the images by using green plane of the image. Then, salt and pepper noise and Gaussian noise of the image is removed using median filter and Gaussian filter respectively. After that morphological Bottom Hat Transform is applied to extract the blood vessels. Finally, blood vessels are enhanced using sharpening technique with an unsharp masking. Results are compared with different blood vessel detection algorithms and are found to be encouraging.
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应用Bottom Hat变换提取视网膜图像中的血管
视网膜图像中血管的提取为不同的视网膜病变疾病(糖尿病视网膜病变、损伤检测、异常检测、出血检测和黄斑变性)提供早期诊断。本文讨论了视网膜图像中存在的噪声和血管变暗、变细的问题。本文介绍了一种从视网膜眼底图像中提取视网膜血管的新方法,这将有助于眼科专家对视网膜进行视觉检查,并必将提高视网膜图像的自动分析水平。本文首先采用光反射去除技术,利用图像的绿色平面去除图像中较亮的条带。然后分别使用中值滤波和高斯滤波去除图像中的椒盐噪声和高斯噪声。然后应用形态学底帽变换提取血管。最后,血管增强使用锐化技术与非锐化掩蔽。将不同的血管检测算法进行了比较,结果令人鼓舞。
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