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A novel hybrid segmentation approach for optic papilla detection in high resolution fundus images of retina

机译:视网膜高分辨率眼底图像中光乳头检测的一种新型混合分割方法

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摘要

The paper proposes a novel method for segmenting optic papilla (OP) from the high-resolution fundus (HRF) image. For diagnosing eye-related diseases like Glaucoma, Diabetic Retinopathy, fine changes in OP must be examined. To examine the OP, its region should be exactly segmented from the fundus images of the retina. Major problems in accurately segmenting the OP are: 1) features of OP and exudates are similar and 2) the region behind the optic nerve head is difficult to locate. To overcome these problems and acquire precise segmentation a novel hybrid segmentation algorithm is developed using morphological image processing techniques and entropy filtering. A novel region selection algorithm based on Euclidean distance is proposed to remove the regions around the OP. When these regions are removed, the papilla region can be located easily. Then, active contour is applied to segment the OP. Most of the researchers have done OP localization than segmentation. The proposed method automatically locates the OP and segments it from the image. The proposed algorithm is evaluated by computing sensitivity, specificity, and accuracy. These metrics are computed using the proposed segmentation results against the ground truth data. To check the efficiency of the proposed algorithm, it is tested with low-resolution images in DRIONS. The proposed algorithm achieves 99.45% and 99.51% of accuracy for HRF and DRIONS datasets respectively.
机译:本文提出了一种从高分辨率基底(HRF)图像中分割视神经乳头(OP)的新方法。为了诊断眼神疾病,如青光眼,糖尿病视网膜病变,必须检查OP的细化变化。要检查OP,其区域应与视网膜的眼底图像完全分段。精确分割OP的主要问题是:1)OP和渗出物的特征是类似的,2)视神经头后面的区域难以定位。为了克服这些问题并获得精确分割,使用形态图像处理技术和熵滤波来开发新的混合分割算法。提出了一种基于欧几里德距离的新区域选择算法,用于去除OP周围的区域。当这些区域被移除时,可以容易地定位乳头区域。然后,应用活动轮廓以段段。大多数研究人员都已比分割所做的定位。所提出的方法自动将OP和段从图像定位。通过计算灵敏度,特异性和准确性来评估所提出的算法。这些指标使用所提出的分段结果对基础事实数据计算。为了检查所提出的算法的效率,它在静脉中的低分辨率图像进行了测试。所提出的算法分别为HRF和DRIONS数据集的准确性实现了99.45%和99.51%。

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