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Diabetic Retinopathy Lesions Detection using Faster-RCNN from retinal images

机译:患糖尿病视网膜病变病灶检测使用视网膜图像的速度-RCNN

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Diabetic Retinopathy is an eye disease that damages the retina which can cause vision loss. Early detection of DR is needed because the disease shows little signs in its initial stage due to the slow progression of the disease. The screening process of the eye is a time-consuming, costly, and tedious task due to the examination of every single patient. In this work, we deal with the localization of lesions of DR from retinal images. We have presented a novel method based on the Faster Region-based Convolutional Neural Network (RCNN) to overcome the challenges of DR lesions detection methods and precisely detect the early signs as well. Our method constitutes two steps: first is preprocessing and the other is the localization of abnormalities of DR i.e. hard exudates, soft exudates, microaneurysms, and hemorrhages. For performance evaluation, we have used the publicly available datasets i.e. Diaretdbl and Messidor and achieved average values of accuracy as 0.95 and Intersection over union (IOU) as 0.94. The proposed method achieved remarkable results as compared to state-of-the-art techniques.
机译:糖尿病视网膜病变是一种眼部疾病,可以损害导致视力丧失的视网膜。需要早期检测DR,因为由于疾病的进展缓慢,疾病在其初始阶段表现出很少的迹象。由于检查每种患者,眼睛的筛选过程是耗时,昂贵和繁琐的任务。在这项工作中,我们处理来自视网膜图像的博士病变的定位。我们提出了一种基于更快的地区卷积神经网络(RCNN)的新方法,以克服DR病变检测方法的挑战,并精确地检测早期迹象。我们的方法构成了两个步骤:首先是预处理,另一个是博士I.硬渗漏物,软渗出物,微安瘤和出血的定位。对于绩效评估,我们使用了公开的数据集即,DiaRetdbl和Messidor,并达到了0.95的平均精度值,并与联盟(iou)交叉口为0.94。与最先进的技术相比,所提出的方法达到了显着的结果。

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