Detection of Retinal Neovascularization Using Optimized Deep Convolutional Neural Networks

S. Lavanya, Philip Naveen
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引用次数: 5

Abstract

The most common disease that is found among people across the world is Diabetes and it is predicted to increase more in the upcoming years by The World Health Organization (WHO). People who are diabetic for a longer period are more likely to have Diabetic Retinopathy (DR), an eye disease which can lead to blindness and this cannot be reversed. One of the severe stage problems of DR is Retinal Neovascularization (RN), i.e., outburst of retinal blood vessels. Residual Network (ResNet) has an effective technique called Skip or Residual Connections which solves the problem of vanishing gradient during backpropagation. ResNet50 has 50 layers which is a deep network that omits signal representations and learns from residual representations leading to predict RN with 88.97% accuracy.
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基于优化深度卷积神经网络的视网膜新生血管检测
世界上最常见的疾病是糖尿病,据世界卫生组织(WHO)预测,糖尿病在未来几年还会增加。长期患有糖尿病的人更容易患糖尿病视网膜病变(DR),这是一种无法逆转的眼病,可导致失明。视网膜新生血管(Retinal nevascular, RN),即视网膜血管的突出,是视网膜视网膜病变的严重阶段问题之一。残差网络(ResNet)有一种有效的技术,叫做跳过或残差连接,它解决了反向传播过程中梯度消失的问题。ResNet50有50层,这是一个深度网络,它省略了信号表示,并从残差表示中学习,从而预测RN的准确率为88.97%。
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