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Retinal vessel segmentation using histogram matching

机译:使用直方图匹配进行视网膜血管分割

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Performing the segmentation of vasculature in the retinal images having pathology is a challenging problem. This paper presents a novel approach for automated segmentation of the vasculature in retinal images. The approach uses the intensity information from red and green channels of the same retinal image to correct non-uniform illumination in color fundus images. Matched filtering is utilized to enhance the contrast of blood vessels against the background. The enhanced blood vessels are then segmented by employing spatially weighted fuzzy c-means clustering based thresholding which can well maintain the spatial structure of the vascular tree segments. Experimental evaluation of the proposed algorithm demonstrates superior performance over other vessel detection algorithms recently reported in the literature.
机译:在具有病理学的视网膜图像中进行脉管系统的分割是一个具有挑战性的问题。本文提出了一种在视网膜图像中自动分割脉管的新方法。该方法使用来自同一视网膜图像的红色和绿色通道的强度信息来校正彩色眼底图像中的不均匀照明。利用匹配过滤来增强血管与背景的对比度。然后通过采用基于空间加权的模糊c均值聚类的阈值分割增强的血管,该阈值可以很好地维持血管树段的空间结构。对该算法的实验评估表明,其性能优于文献中最近报道的其他血管检测算法。

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