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Structural feature analysis of the vascular network in retinal images

机译:视网膜图像中血管网络的结构特征分析

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摘要

The extraction of structural information from the vascular network captured in a retinal image is an essential component of computer-aided diagnosis for many ophthalmological, cardiovascular, and systemic disorders. Although several methods have been reported in the past to tackle this problem, ensuring clarity and high accuracy while segmenting various objects from a retinal image still poses a challenge. In this work, we have proposed a novel technique to extract the underlying structure of blood vessels from a retinal image that includes segmentation of optic disc region and identification of veins, arteries, and bifurcation points in the vascular network. Unlike previous approaches, the proposed method relies mostly on the processing of digital-geometric features and integrates them with conventional image analysis for effective segmentation of various objects in the vascular network. The method outperforms several prior work in terms of segmentation accuracy, and experiments on several retinal images reveal encouraging results. The performance of the proposed technique is evaluated by comparing clinically-assessed ground-truth with automated findings.
机译:从视网膜图像中捕获的血管网络中的结构信息的提取是许多眼科,心血管和全身疾病的计算机辅助诊断的重要组成部分。虽然过去已经报道了几种方法来解决这个问题,但是确保清晰度和高精度,同时分割来自视网膜图像的各种物体仍然存在挑战。在这项工作中,我们提出了一种新颖的技术来从视网膜图像中提取血管的底层结构,包括视光盘区域的分割和血管网络中的静脉,动脉和分叉点的鉴定。与以前的方法不同,所提出的方法主要依赖于数字 - 几何特征的处理,并将它们与传统图像分析集成,以便有效地分割血管网络中的各种对象。该方法在分割准确性方面优于几个先前的工作,并在几种视网膜图像上进行实验显示令人鼓舞的结果。通过将临床评估的地面真实与自动化结果进行比较来评估所提出的技术的性能。

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