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Detecting the optic disc boundary in digital fundus images using morphological, edge detection, and feature extraction techniques

机译:使用形态学,边缘检测和特征提取技术检测数字眼底图像中的视盘边界

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摘要

Optic disc (OD) detection is an important step in developing systems for automated diagnosis of various serious ophthalmic pathologies. This paper presents a new template-based methodology for segmenting the OD from digital retinal images. This methodology uses morphological and edge detection techniques followed by the Circular Hough Transform to obtain a circular OD boundary approximation. It requires a pixel located within the OD as initial information. For this purpose, a location methodology based on a voting-type algorithm is also proposed. The algorithms were evaluated on the 1200 images of the publicly available MESSIDOR database. The location procedure succeeded in 99% of cases, taking an average computational time of 1.67 s. with a standard deviation of 0.14 s. On the other hand, the segmentation algorithm rendered an average common area overlapping between automated segmentations and true OD regions of 86%. The average computational time was 5.69 s with a standard deviation of 0.54 s. Moreover, a discussion on advantages and disadvantages of the models more generally used for OD segmentation is also presented in this paper.
机译:光盘(OD)检测是开发用于自动诊断各种严重眼科疾病的系统的重要步骤。本文提出了一种基于模板的新方法,用于从数字视网膜图像中分割出OD。该方法使用形态学和边缘检测技术,然后使用圆弧霍夫变换来获得圆孔OD边界近似值。它需要位于OD内的像素作为初始信息。为此,还提出了一种基于投票类型算法的定位方法。在公开可用的MESSIDOR数据库的1200张图像上对算法进行了评估。定位过程在99%的情况下成功完成,平均计算时间为1.67 s。标准偏差为0.14 s。另一方面,分割算法使自动分割和真实OD区域之间的平均公共区域重叠为86%。平均计算时间为5.69 s,标准偏差为0.54 s。此外,本文还讨论了更常用的OD细分模型的优缺点。

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