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Using Retinex Image Enhancement to Improve the Artery/Vein Classification in Retinal Images

机译:使用Retinex图像增强功能改善视网膜图像中的动脉/静脉分类

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A precise characterization of the retinal vessels into veins and arteries is necessary to develop automatic tools for diagnosis support. As medical experts, most of the existing methods use the vessel lightness or color for the classification, since veins are darker than arteries. However, retinal images often suffer from inhomogeneity problems in lightness and contrast, mainly due to the image capturing process and the curved retina surface. This fact and the similarity between both types of vessels make difficult an accurate classification, even for medical experts. In this paper, we propose an automatic approach for the retinal vessel classification that combines an image enhancement procedure based on the retinex theory and a clustering process performed in several overlapped areas within the retinal image. Experimental results prove the accuracy of our approach in terms of miss-classified and unclassified vessels.
机译:要开发用于诊断支持的自动工具,必须准确表征视网膜血管成静脉和动脉的特征。作为医学专家,大多数现有方法都使用血管的明度或颜色进行分类,因为静脉比动脉黑。然而,主要由于图像捕获过程和弯曲的视网膜表面,视网膜图像经常在亮度和对比度方面遭受不均匀性问题。这个事实以及两种类型血管之间的相似性,即使对于医学专家而言,也很难进行准确的分类。在本文中,我们提出了一种用于视网膜血管分类的自动方法,该方法结合了基于retinex理论的图像增强程序和在视网膜图像内多个重叠区域中执行的聚类过程。实验结果证明了我们的方法在未分类船和未分类船方面的准确性。

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