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Detection of Non-Proliferative Diabetic Retinopathy in fundus images of the human retina

机译:人视网膜眼底图像中的非增殖性糖尿病视网膜病变的检测

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Diabetic macular edema (DME) is the largest cause of visual acuity loss in diabetes. It is non-proliferative stage of diabetic retinopathy which affects central vision. A feature extraction technique is introduced to capture the global characteristics of the fundus images and discriminate the normal from DME images. DME detection is carried out via supervised learning. Disease severity is assessed using a rotational asymmetry metric by examining the symmetry of macular region. The automatic disease detection system can significantly reduce the load of experts by limiting the referrals to those cases that require immediate attention. The reduction in time and effort will be significant where a majority of patients screened for diseases turn out to be normal. The ratio of normal patients to the ones showing disease symptoms can be as high as 9 to 1 in DR screening. Microaneurysms are small blood clots which occur due to capillary burst. It also leads to vision loss. Microaneurysm is identified using Circular Hough Transform. The detection performance has specificity between 74% and 90%. The severity classification accuracy is 81%.
机译:糖尿病黄斑水肿(DME)是糖尿病中视力损失最大的原因。它是糖尿病视网膜病变的不增殖阶段,影响中心视觉。引入特征提取技术以捕获眼底图像的全局特征,并从DME图像区分正常情况。 DME检测通过监督学习进行。通过检查黄斑地区的对称性,使用旋转不对称度量评估疾病严重程度。通过将推荐限制在需要立即关注的情况下,自动疾病检测系统可以显着降低专家的负荷。减少时间和努力将是显着的,其中大多数患者筛查疾病结果是正常的。正常患者对显示疾病症状的患者的比例可以高达9至1在DR筛选中。 MicroAneuRysms是由于毛细血管爆裂而发生的小血液凝块。它也会导致视力丧失。使用圆形霍夫变换来识别微内脉瘤。检测性能特异性在74%和90%之间。严重性分类准确性为81%。

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