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首页> 外文期刊>Mathematical Modelling and Analysis >Segmenting the Eye Fundus Images for Identification of Blood Vessels
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Segmenting the Eye Fundus Images for Identification of Blood Vessels

机译:分割眼底图像以识别血管

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摘要

Retinal (eye fundus) images are widely used for diagnostic purposes by ophthalmologists. The normal features of eye fundus images include the optic nerve disc, fovea and blood vessels. Algorithms for identifying blood vessels in the eye fundus image generally fall into two classes: extraction of vessel information and segmentation of vessel pixels. Algorithms of the first group start on known vessel point and trace the vasculature structure in the image. Algorithms of the second group perform a binary classification (vessel or non-vessel, i.e. background) in accordance of some threshold. We focus here on the binarization [4] methods that adapt the threshold value on each pixel to the global/local image characteristics. Global binarization methods [5] try to find a single threshold value for the whole image. Local binarization methods [3] compute thresholds individually for each pixel using information from the local neighborhood of the pixel. In this paper, we modify and improve the Sauvola local binarization method [3] by extending its abilities to be applied for eye fundus pictures analysis. This method has been adopted for automatic detection of blood vessels in retinal images. We suggest automatic parameter selection for Sauvola method. Our modification allows determine/extract the blood vessels almost independently of the brightness of the picture.
机译:眼科医生将视网膜图像(眼底)广泛用于诊断目的。眼底图像的正常特征包括视神经盘,中央凹和血管。用于识别眼底图像中的血管的算法通常分为两类:血管信息的提取和血管像素的分割。第一组算法从已知的血管点开始,并跟踪图像中的脉管结构。第二组算法根据某个阈值执行二进制分类(容器或非容器,即背景)。在这里,我们集中于二值化[4]方法,该方法可将每个像素上的阈值调整为适合全局/局部图像特征。全局二值化方法[5]尝试为整个图像找到单个阈值。局部二值化方法[3]使用来自像素局部邻域的信息分别为每个像素计算阈值。在本文中,我们通过扩展Sauvola局部二值化方法[3]来扩展和改进其用于眼底图像分析的能力,从而对其进行改进和改进。该方法已被用于自动检测视网膜图像中的血管。我们建议Sauvola方法自动选择参数。我们的修改几乎可以独立于图片的亮度确定/提取血管。

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