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Detection of retinal blood vessels from ophthalmoscope images using morphological approach

机译:使用形态学方法从检眼镜图像检测视网膜血管

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Accurate segmentation of retinal blood vessels is an essential task for diagnosis of various pathological disorders. In this paper, a novel method has been introduced for segmenting retinal blood vessels which involves pre-processing, segmentation and post-processing. The pre-processing stage enhanced the image using contrast limited adaptive histogram equalization and 2D Gabor wavelet. The enhanced image is segmented using geodesic operators and a final segmentation output is obtained by applying a post-processing stage that involves hole filling and removal of isolated pixels. The performance of the proposed method is evaluated on the publicly available Digital retinal images for vessel extraction (DRIVE) and High-resolution fundus (HRF) databases using five different measurements and experimental analysis shows that the proposed method reach an average accuracy of 0.9541 on DRIVE database and 0.9568, 0.9478 and 0.9613 on HRF database with healthy, diabetic retinopathy (DR) and glaucomatous images respectively.
机译:视网膜血管的精确分割是诊断各种病理疾病的基本任务。在本文中,已经介绍了一种用于分割视网膜血管的新方法,该方法涉及预处理,分割和后处理。预处理阶段使用对比度受限的自适应直方图均衡和2D Gabor小波增强了图像。使用测地线运算符对增强图像进行分割,并通过应用后处理阶段获得最终的分割输出,该阶段涉及孔的填充和孤立像素的去除。使用五种不同的测量方法,在公开的血管提取数字视网膜图像和高分辨率眼底(HRF)数据库上评估了该方法的性能,实验分析表明,该方法在DRIVE上的平均准确度为0.9541分别具有健康,糖尿病性视网膜病变(DR)和青光眼图像的HRF数据库的0.9568、0.9478和0.9613。

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