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A novel approach for the detection of new vessels in the retinal images for screening Diabetic Retinopathy

机译:一种用于检测视网膜图像中新血管的新方法,用于筛选糖尿病视网膜病变

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Diabetic Retinopathy is a major cause of blindness. It is mainly due to the development of abnormal new blood vessels in the retina. In this approach, we proposed an efficient method to detect the abnormal new blood vessels. The retinal images are pre-processed using Adaptive Histogram Equalization (AHE) and the blood vessels are enhanced by applying Top-hat and Bottom-hat transforms. The enhanced image is segmented using Fuzzy C Means Clustering (FCM) technique. Features based on shape, brightness, position and contrast are extracted from the segmented image and classified as normal or abnormal using K Nearest Neighbour (KNN) Classifier. The performance was evaluated on DRIVE and MESSIDOR database and an accuracy of 96.5% was obtained.
机译:糖尿病视网膜病变是失明的主要原因。 主要是由于视网膜中异常新血管的发展。 在这种方法中,我们提出了一种检测异常新血管的有效方法。 使用自适应直方图均衡(AHE)预处理视网膜图像,并且通过施加顶帽和底帽变换来提高血管。 使用模糊C表示聚类(FCM)技术进行增强的图像。 根据形状,亮度,位置和对比度的特征从分段图像中提取,并使用K最近邻(knn)分类器分类为正常或异常。 在驱动器和Messidor数据库中评估了性能,获得了96.5%的准确性。

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