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Filter bank: A directional approach for retinal vessel segmentation

机译:过滤器银行:视网膜血管分割的定向方法

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It is well known that retinal diseases are sometimes identified by tortuosity of the vessels, presence of exudates and hemorrhages while lesions of tissues are associated to diabetic retinopathy, retinopathy of prematurity and more general cerebrovascular problems. One of the main issues in this research field is detecting small curvilinear structures, thus the aim of this contribution is to introduce a non-supervised and automated methodology to detect features such as curvilinear structures in retinal images. The core of the proposed methodology consists in using an approach that resembles the “à trous” wavelet algorithm. With respect to the standard Gabor analysis our methodology is based on a sequence Gaussian filters, it is faster yet effective in the representation of the directions along the retinal vessels, which is a useful information to evaluate their tortuosity and to segment the images. To evaluate the correctness of the results we carried out a comparison with the so called Scale and Curvature Invariant Ridge Detector, which is considered as one of the most effective supervised methods for retinal vessel detection, on a pair of public domain datasets.
机译:众所周知,视网膜疾病有时被血管的曲折,存在渗出物和出血的存在,而组织的病变与糖尿病视网膜病变有关,早熟的视网膜病变和更通用的脑血管问题。该研究领域的主要问题之一是检测小曲线结构,因此该贡献的目的是引入非监督和自动化方法,以检测视网膜图像中的曲线结构等特征。所提出的方法的核心在于使用类似于“àrrous”小波算法的方法。关于标准Gabor分析我们的方法基于序列高斯滤波器,它在沿着视网膜血管的方向的表示中更快但有效,这是评估曲折的有用信息和分段图像。为了评估结果的正确性,我们与所谓的规模和曲率不变脊检测器进行了比较,该脊检测器被认为是一对公共域数据集上的视网膜血管检测最有效的监督方法之一。

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