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Detection and classification of hard exudates in retinal images

机译:视网膜图像中硬渗漏的检测和分类

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摘要

Diabetic retinopathy (DR) is a chronic disease of the retinal microvasculature which leads to loss of central visual acuity. Early detection of hard exudates in retinal images using computer aided tool helps the ophthalmologist to diagnose the blindness problem. This article presents a novel method to detect and classify the hard exudates in retinal images. For detection, the optic disc (OD) of the retinal image is masked and then the bright patches that contribute to hard exudates are segmented based on thresholding and morphological reconstruction techniques. Here OD is identified using brightness and variance features of the OD followed by Circular Hough Transformation. For classification, features such as color, size, and texture are extracted from each segmented candidate regions based on these features and the regions are classified by using multilayered perceptron neural network (MLP). The proposed method is experimented on the DIARETDB1 retinal dataset and also compared with the existing methods.
机译:糖尿病视网膜病变(DR)是视网膜微血管的慢性疾病,导致中枢视力的丧失。使用计算机辅助工具的视网膜图像中的硬渗出物的早期检测有助于眼科医生诊断失明问题。本文介绍了一种新的方法来检测和分类视网膜图像中的硬渗出物。对于检测,视网膜图像的光盘(OD)被掩蔽,然后基于阈值和形态重建技术进行有助于硬渗出物的亮贴片。这里使用OD的亮度和方差特征识别OD,然后循环转换。对于分类,根据这些特征从每个分段候选区域提取诸如颜色,大小和纹理的特征,并且通过使用多层的Perceptron神经网络(MLP)来分类区域。所提出的方法在DiaRetdB1视网膜数据集上进行了实验,也与现有方法进行了比较。

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