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Optic disc detection using geometric properties and GVF snake

机译:使用几何属性和GVF蛇检测光盘

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摘要

The optic disc (OD) segmentation in an retinal image is prerequisite for an computerized detection of diabetic retinopathy and also for monitoring changes due to diseases such as glaucoma. The OD segmentation is also used for the detection of other anatomical structures like fovea and vascular tree. Many algorithms based on thresholding, active contour model, GVF snake and clustering have been proposed for the segmentation of OD. In this study, a novel method is proposed for optic disc segmentation. The method makes use of P-Tile thresholding for detecting patch of OD. Connected component analysis is performed for eliminating false positives. This step yields initial patch of optic disc for which centroid correction is performed. GVF snake model is used for finding the contour of OD. The method is robust and effective even in the low contrast images as well as in the presence of other pathological structures like exudates. The experimentation has been done using benchmark retinal image databases, namely, diaretdb0, diaretdb1, DRIVE. The results show accuracy of 98% with diaretdb0, 97% with diaretdb1 and 100% with DRIVE.
机译:视网膜图像中的视盘(OD)分割是计算机化检测糖尿病性视网膜病变的前提,也是监测因青光眼等疾病引起的变化的前提。 OD分割还用于检测其他解剖结构,如中央凹和血管树。已经提出了许多基于阈值,主动轮廓模型,GVF蛇形和聚类的算法来分割OD。在这项研究中,提出了一种新颖的光盘分割方法。该方法利用P-Tile阈值检测OD补丁。进行连接组件分析以消除误报。该步骤产生了对其进行质心校正的视盘的初始斑块。 GVF蛇模型用于查找OD的轮廓。该方法即使在低对比度图像以及存在其他病理结构(如渗出液)的情况下,也具有鲁棒性和有效性。实验已经使用基准视网膜图像数据库完成,即diaretdb0,diaretdb1,DRIVE。结果显示,diaretdb0的准确性为98%,diaretdb1的准确性为97%,DRIVE的准确性为100%。

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